Fix: possible use after free in consumer
[lttng-tools.git] / src / common / consumer.c
CommitLineData
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1/*
2 * Copyright (C) 2011 - Julien Desfossez <julien.desfossez@polymtl.ca>
3 * Mathieu Desnoyers <mathieu.desnoyers@efficios.com>
00e2e675 4 * 2012 - David Goulet <dgoulet@efficios.com>
3bd1e081 5 *
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6 * This program is free software; you can redistribute it and/or modify
7 * it under the terms of the GNU General Public License, version 2 only,
8 * as published by the Free Software Foundation.
3bd1e081 9 *
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10 * This program is distributed in the hope that it will be useful, but WITHOUT
11 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
12 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
13 * more details.
3bd1e081 14 *
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15 * You should have received a copy of the GNU General Public License along
16 * with this program; if not, write to the Free Software Foundation, Inc.,
17 * 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA.
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18 */
19
20#define _GNU_SOURCE
21#include <assert.h>
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22#include <poll.h>
23#include <pthread.h>
24#include <stdlib.h>
25#include <string.h>
26#include <sys/mman.h>
27#include <sys/socket.h>
28#include <sys/types.h>
29#include <unistd.h>
77c7c900 30#include <inttypes.h>
331744e3 31#include <signal.h>
3bd1e081 32
990570ed 33#include <common/common.h>
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34#include <common/utils.h>
35#include <common/compat/poll.h>
10a8a223 36#include <common/kernel-ctl/kernel-ctl.h>
00e2e675 37#include <common/sessiond-comm/relayd.h>
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38#include <common/sessiond-comm/sessiond-comm.h>
39#include <common/kernel-consumer/kernel-consumer.h>
00e2e675 40#include <common/relayd/relayd.h>
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41#include <common/ust-consumer/ust-consumer.h>
42
43#include "consumer.h"
1d1a276c 44#include "consumer-stream.h"
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45
46struct lttng_consumer_global_data consumer_data = {
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47 .stream_count = 0,
48 .need_update = 1,
49 .type = LTTNG_CONSUMER_UNKNOWN,
50};
51
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52enum consumer_channel_action {
53 CONSUMER_CHANNEL_ADD,
a0cbdd2e 54 CONSUMER_CHANNEL_DEL,
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55 CONSUMER_CHANNEL_QUIT,
56};
57
58struct consumer_channel_msg {
59 enum consumer_channel_action action;
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60 struct lttng_consumer_channel *chan; /* add */
61 uint64_t key; /* del */
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62};
63
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64/*
65 * Flag to inform the polling thread to quit when all fd hung up. Updated by
66 * the consumer_thread_receive_fds when it notices that all fds has hung up.
67 * Also updated by the signal handler (consumer_should_exit()). Read by the
68 * polling threads.
69 */
a98dae5f 70volatile int consumer_quit;
3bd1e081 71
43c34bc3 72/*
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73 * Global hash table containing respectively metadata and data streams. The
74 * stream element in this ht should only be updated by the metadata poll thread
75 * for the metadata and the data poll thread for the data.
76 */
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77static struct lttng_ht *metadata_ht;
78static struct lttng_ht *data_ht;
43c34bc3 79
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80/*
81 * Notify a thread lttng pipe to poll back again. This usually means that some
82 * global state has changed so we just send back the thread in a poll wait
83 * call.
84 */
85static void notify_thread_lttng_pipe(struct lttng_pipe *pipe)
86{
87 struct lttng_consumer_stream *null_stream = NULL;
88
89 assert(pipe);
90
91 (void) lttng_pipe_write(pipe, &null_stream, sizeof(null_stream));
92}
93
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94static void notify_channel_pipe(struct lttng_consumer_local_data *ctx,
95 struct lttng_consumer_channel *chan,
a0cbdd2e 96 uint64_t key,
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97 enum consumer_channel_action action)
98{
99 struct consumer_channel_msg msg;
100 int ret;
101
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102 memset(&msg, 0, sizeof(msg));
103
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104 msg.action = action;
105 msg.chan = chan;
f21dae48 106 msg.key = key;
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107 do {
108 ret = write(ctx->consumer_channel_pipe[1], &msg, sizeof(msg));
109 } while (ret < 0 && errno == EINTR);
110}
111
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112void notify_thread_del_channel(struct lttng_consumer_local_data *ctx,
113 uint64_t key)
114{
115 notify_channel_pipe(ctx, NULL, key, CONSUMER_CHANNEL_DEL);
116}
117
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118static int read_channel_pipe(struct lttng_consumer_local_data *ctx,
119 struct lttng_consumer_channel **chan,
a0cbdd2e 120 uint64_t *key,
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121 enum consumer_channel_action *action)
122{
123 struct consumer_channel_msg msg;
124 int ret;
125
126 do {
127 ret = read(ctx->consumer_channel_pipe[0], &msg, sizeof(msg));
128 } while (ret < 0 && errno == EINTR);
129 if (ret > 0) {
130 *action = msg.action;
131 *chan = msg.chan;
a0cbdd2e 132 *key = msg.key;
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133 }
134 return ret;
135}
136
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137/*
138 * Find a stream. The consumer_data.lock must be locked during this
139 * call.
140 */
d88aee68 141static struct lttng_consumer_stream *find_stream(uint64_t key,
8389e4f8 142 struct lttng_ht *ht)
3bd1e081 143{
e4421fec 144 struct lttng_ht_iter iter;
d88aee68 145 struct lttng_ht_node_u64 *node;
e4421fec 146 struct lttng_consumer_stream *stream = NULL;
3bd1e081 147
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148 assert(ht);
149
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150 /* -1ULL keys are lookup failures */
151 if (key == (uint64_t) -1ULL) {
7ad0a0cb 152 return NULL;
7a57cf92 153 }
e4421fec 154
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155 rcu_read_lock();
156
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157 lttng_ht_lookup(ht, &key, &iter);
158 node = lttng_ht_iter_get_node_u64(&iter);
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159 if (node != NULL) {
160 stream = caa_container_of(node, struct lttng_consumer_stream, node);
3bd1e081 161 }
e4421fec 162
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163 rcu_read_unlock();
164
e4421fec 165 return stream;
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166}
167
da009f2c 168static void steal_stream_key(uint64_t key, struct lttng_ht *ht)
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169{
170 struct lttng_consumer_stream *stream;
171
04253271 172 rcu_read_lock();
ffe60014 173 stream = find_stream(key, ht);
04253271 174 if (stream) {
da009f2c 175 stream->key = (uint64_t) -1ULL;
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176 /*
177 * We don't want the lookup to match, but we still need
178 * to iterate on this stream when iterating over the hash table. Just
179 * change the node key.
180 */
da009f2c 181 stream->node.key = (uint64_t) -1ULL;
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182 }
183 rcu_read_unlock();
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184}
185
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186/*
187 * Return a channel object for the given key.
188 *
189 * RCU read side lock MUST be acquired before calling this function and
190 * protects the channel ptr.
191 */
d88aee68 192struct lttng_consumer_channel *consumer_find_channel(uint64_t key)
3bd1e081 193{
e4421fec 194 struct lttng_ht_iter iter;
d88aee68 195 struct lttng_ht_node_u64 *node;
e4421fec 196 struct lttng_consumer_channel *channel = NULL;
3bd1e081 197
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198 /* -1ULL keys are lookup failures */
199 if (key == (uint64_t) -1ULL) {
7ad0a0cb 200 return NULL;
7a57cf92 201 }
e4421fec 202
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203 lttng_ht_lookup(consumer_data.channel_ht, &key, &iter);
204 node = lttng_ht_iter_get_node_u64(&iter);
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205 if (node != NULL) {
206 channel = caa_container_of(node, struct lttng_consumer_channel, node);
3bd1e081 207 }
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208
209 return channel;
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210}
211
ffe60014 212static void free_stream_rcu(struct rcu_head *head)
7ad0a0cb 213{
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214 struct lttng_ht_node_u64 *node =
215 caa_container_of(head, struct lttng_ht_node_u64, head);
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216 struct lttng_consumer_stream *stream =
217 caa_container_of(node, struct lttng_consumer_stream, node);
7ad0a0cb 218
ffe60014 219 free(stream);
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220}
221
ffe60014 222static void free_channel_rcu(struct rcu_head *head)
702b1ea4 223{
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224 struct lttng_ht_node_u64 *node =
225 caa_container_of(head, struct lttng_ht_node_u64, head);
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226 struct lttng_consumer_channel *channel =
227 caa_container_of(node, struct lttng_consumer_channel, node);
702b1ea4 228
ffe60014 229 free(channel);
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230}
231
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232/*
233 * RCU protected relayd socket pair free.
234 */
ffe60014 235static void free_relayd_rcu(struct rcu_head *head)
00e2e675 236{
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237 struct lttng_ht_node_u64 *node =
238 caa_container_of(head, struct lttng_ht_node_u64, head);
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239 struct consumer_relayd_sock_pair *relayd =
240 caa_container_of(node, struct consumer_relayd_sock_pair, node);
241
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242 /*
243 * Close all sockets. This is done in the call RCU since we don't want the
244 * socket fds to be reassigned thus potentially creating bad state of the
245 * relayd object.
246 *
247 * We do not have to lock the control socket mutex here since at this stage
248 * there is no one referencing to this relayd object.
249 */
250 (void) relayd_close(&relayd->control_sock);
251 (void) relayd_close(&relayd->data_sock);
252
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253 free(relayd);
254}
255
256/*
257 * Destroy and free relayd socket pair object.
00e2e675 258 */
51230d70 259void consumer_destroy_relayd(struct consumer_relayd_sock_pair *relayd)
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260{
261 int ret;
262 struct lttng_ht_iter iter;
263
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264 if (relayd == NULL) {
265 return;
266 }
267
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268 DBG("Consumer destroy and close relayd socket pair");
269
270 iter.iter.node = &relayd->node.node;
271 ret = lttng_ht_del(consumer_data.relayd_ht, &iter);
173af62f 272 if (ret != 0) {
8994307f 273 /* We assume the relayd is being or is destroyed */
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274 return;
275 }
00e2e675 276
00e2e675 277 /* RCU free() call */
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278 call_rcu(&relayd->node.head, free_relayd_rcu);
279}
280
281/*
282 * Remove a channel from the global list protected by a mutex. This function is
283 * also responsible for freeing its data structures.
284 */
285void consumer_del_channel(struct lttng_consumer_channel *channel)
286{
287 int ret;
288 struct lttng_ht_iter iter;
f2a444f1 289 struct lttng_consumer_stream *stream, *stmp;
ffe60014 290
d88aee68 291 DBG("Consumer delete channel key %" PRIu64, channel->key);
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292
293 pthread_mutex_lock(&consumer_data.lock);
a9838785 294 pthread_mutex_lock(&channel->lock);
ffe60014 295
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296 /* Delete streams that might have been left in the stream list. */
297 cds_list_for_each_entry_safe(stream, stmp, &channel->streams.head,
298 send_node) {
299 cds_list_del(&stream->send_node);
300 /*
301 * Once a stream is added to this list, the buffers were created so
302 * we have a guarantee that this call will succeed.
303 */
304 consumer_stream_destroy(stream, NULL);
305 }
306
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307 switch (consumer_data.type) {
308 case LTTNG_CONSUMER_KERNEL:
309 break;
310 case LTTNG_CONSUMER32_UST:
311 case LTTNG_CONSUMER64_UST:
312 lttng_ustconsumer_del_channel(channel);
313 break;
314 default:
315 ERR("Unknown consumer_data type");
316 assert(0);
317 goto end;
318 }
319
320 rcu_read_lock();
321 iter.iter.node = &channel->node.node;
322 ret = lttng_ht_del(consumer_data.channel_ht, &iter);
323 assert(!ret);
324 rcu_read_unlock();
325
326 call_rcu(&channel->node.head, free_channel_rcu);
327end:
a9838785 328 pthread_mutex_unlock(&channel->lock);
ffe60014 329 pthread_mutex_unlock(&consumer_data.lock);
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330}
331
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332/*
333 * Iterate over the relayd hash table and destroy each element. Finally,
334 * destroy the whole hash table.
335 */
336static void cleanup_relayd_ht(void)
337{
338 struct lttng_ht_iter iter;
339 struct consumer_relayd_sock_pair *relayd;
340
341 rcu_read_lock();
342
343 cds_lfht_for_each_entry(consumer_data.relayd_ht->ht, &iter.iter, relayd,
344 node.node) {
51230d70 345 consumer_destroy_relayd(relayd);
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346 }
347
228b5bf7 348 rcu_read_unlock();
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349
350 lttng_ht_destroy(consumer_data.relayd_ht);
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351}
352
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353/*
354 * Update the end point status of all streams having the given network sequence
355 * index (relayd index).
356 *
357 * It's atomically set without having the stream mutex locked which is fine
358 * because we handle the write/read race with a pipe wakeup for each thread.
359 */
da009f2c 360static void update_endpoint_status_by_netidx(uint64_t net_seq_idx,
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361 enum consumer_endpoint_status status)
362{
363 struct lttng_ht_iter iter;
364 struct lttng_consumer_stream *stream;
365
da009f2c 366 DBG("Consumer set delete flag on stream by idx %" PRIu64, net_seq_idx);
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367
368 rcu_read_lock();
369
370 /* Let's begin with metadata */
371 cds_lfht_for_each_entry(metadata_ht->ht, &iter.iter, stream, node.node) {
372 if (stream->net_seq_idx == net_seq_idx) {
373 uatomic_set(&stream->endpoint_status, status);
374 DBG("Delete flag set to metadata stream %d", stream->wait_fd);
375 }
376 }
377
378 /* Follow up by the data streams */
379 cds_lfht_for_each_entry(data_ht->ht, &iter.iter, stream, node.node) {
380 if (stream->net_seq_idx == net_seq_idx) {
381 uatomic_set(&stream->endpoint_status, status);
382 DBG("Delete flag set to data stream %d", stream->wait_fd);
383 }
384 }
385 rcu_read_unlock();
386}
387
388/*
389 * Cleanup a relayd object by flagging every associated streams for deletion,
390 * destroying the object meaning removing it from the relayd hash table,
391 * closing the sockets and freeing the memory in a RCU call.
392 *
393 * If a local data context is available, notify the threads that the streams'
394 * state have changed.
395 */
396static void cleanup_relayd(struct consumer_relayd_sock_pair *relayd,
397 struct lttng_consumer_local_data *ctx)
398{
da009f2c 399 uint64_t netidx;
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400
401 assert(relayd);
402
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403 DBG("Cleaning up relayd sockets");
404
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405 /* Save the net sequence index before destroying the object */
406 netidx = relayd->net_seq_idx;
407
408 /*
409 * Delete the relayd from the relayd hash table, close the sockets and free
410 * the object in a RCU call.
411 */
51230d70 412 consumer_destroy_relayd(relayd);
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413
414 /* Set inactive endpoint to all streams */
415 update_endpoint_status_by_netidx(netidx, CONSUMER_ENDPOINT_INACTIVE);
416
417 /*
418 * With a local data context, notify the threads that the streams' state
419 * have changed. The write() action on the pipe acts as an "implicit"
420 * memory barrier ordering the updates of the end point status from the
421 * read of this status which happens AFTER receiving this notify.
422 */
423 if (ctx) {
acdb9057 424 notify_thread_lttng_pipe(ctx->consumer_data_pipe);
13886d2d 425 notify_thread_lttng_pipe(ctx->consumer_metadata_pipe);
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426 }
427}
428
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429/*
430 * Flag a relayd socket pair for destruction. Destroy it if the refcount
431 * reaches zero.
432 *
433 * RCU read side lock MUST be aquired before calling this function.
434 */
435void consumer_flag_relayd_for_destroy(struct consumer_relayd_sock_pair *relayd)
436{
437 assert(relayd);
438
439 /* Set destroy flag for this object */
440 uatomic_set(&relayd->destroy_flag, 1);
441
442 /* Destroy the relayd if refcount is 0 */
443 if (uatomic_read(&relayd->refcount) == 0) {
51230d70 444 consumer_destroy_relayd(relayd);
a6ba4fe1
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445 }
446}
447
3bd1e081 448/*
1d1a276c
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449 * Completly destroy stream from every visiable data structure and the given
450 * hash table if one.
451 *
452 * One this call returns, the stream object is not longer usable nor visible.
3bd1e081 453 */
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454void consumer_del_stream(struct lttng_consumer_stream *stream,
455 struct lttng_ht *ht)
3bd1e081 456{
1d1a276c 457 consumer_stream_destroy(stream, ht);
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458}
459
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460/*
461 * XXX naming of del vs destroy is all mixed up.
462 */
463void consumer_del_stream_for_data(struct lttng_consumer_stream *stream)
464{
465 consumer_stream_destroy(stream, data_ht);
466}
467
468void consumer_del_stream_for_metadata(struct lttng_consumer_stream *stream)
469{
470 consumer_stream_destroy(stream, metadata_ht);
471}
472
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473struct lttng_consumer_stream *consumer_allocate_stream(uint64_t channel_key,
474 uint64_t stream_key,
3bd1e081 475 enum lttng_consumer_stream_state state,
ffe60014 476 const char *channel_name,
6df2e2c9 477 uid_t uid,
00e2e675 478 gid_t gid,
57a269f2 479 uint64_t relayd_id,
53632229 480 uint64_t session_id,
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481 int cpu,
482 int *alloc_ret,
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483 enum consumer_channel_type type,
484 unsigned int monitor)
3bd1e081 485{
ffe60014 486 int ret;
3bd1e081 487 struct lttng_consumer_stream *stream;
3bd1e081 488
effcf122 489 stream = zmalloc(sizeof(*stream));
3bd1e081 490 if (stream == NULL) {
7a57cf92 491 PERROR("malloc struct lttng_consumer_stream");
ffe60014 492 ret = -ENOMEM;
7a57cf92 493 goto end;
3bd1e081 494 }
7a57cf92 495
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496 rcu_read_lock();
497
3bd1e081 498 stream->key = stream_key;
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499 stream->out_fd = -1;
500 stream->out_fd_offset = 0;
e5d1a9b3 501 stream->output_written = 0;
3bd1e081 502 stream->state = state;
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503 stream->uid = uid;
504 stream->gid = gid;
ffe60014 505 stream->net_seq_idx = relayd_id;
53632229 506 stream->session_id = session_id;
4891ece8 507 stream->monitor = monitor;
774d490c 508 stream->endpoint_status = CONSUMER_ENDPOINT_ACTIVE;
53632229 509 pthread_mutex_init(&stream->lock, NULL);
58b1f425 510
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511 /* If channel is the metadata, flag this stream as metadata. */
512 if (type == CONSUMER_CHANNEL_TYPE_METADATA) {
513 stream->metadata_flag = 1;
514 /* Metadata is flat out. */
515 strncpy(stream->name, DEFAULT_METADATA_NAME, sizeof(stream->name));
58b1f425 516 } else {
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517 /* Format stream name to <channel_name>_<cpu_number> */
518 ret = snprintf(stream->name, sizeof(stream->name), "%s_%d",
519 channel_name, cpu);
520 if (ret < 0) {
521 PERROR("snprintf stream name");
522 goto error;
523 }
58b1f425 524 }
c30aaa51 525
ffe60014 526 /* Key is always the wait_fd for streams. */
d88aee68 527 lttng_ht_node_init_u64(&stream->node, stream->key);
ffe60014 528
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529 /* Init node per channel id key */
530 lttng_ht_node_init_u64(&stream->node_channel_id, channel_key);
531
53632229 532 /* Init session id node with the stream session id */
d88aee68 533 lttng_ht_node_init_u64(&stream->node_session_id, stream->session_id);
53632229 534
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535 DBG3("Allocated stream %s (key %" PRIu64 ", chan_key %" PRIu64
536 " relayd_id %" PRIu64 ", session_id %" PRIu64,
537 stream->name, stream->key, channel_key,
538 stream->net_seq_idx, stream->session_id);
d56db448
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539
540 rcu_read_unlock();
3bd1e081 541 return stream;
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542
543error:
d56db448 544 rcu_read_unlock();
c80048c6 545 free(stream);
7a57cf92 546end:
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547 if (alloc_ret) {
548 *alloc_ret = ret;
549 }
c80048c6 550 return NULL;
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551}
552
553/*
554 * Add a stream to the global list protected by a mutex.
555 */
5ab66908 556int consumer_add_data_stream(struct lttng_consumer_stream *stream)
3bd1e081 557{
5ab66908 558 struct lttng_ht *ht = data_ht;
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559 int ret = 0;
560
e316aad5 561 assert(stream);
43c34bc3 562 assert(ht);
c77fc10a 563
d88aee68 564 DBG3("Adding consumer stream %" PRIu64, stream->key);
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565
566 pthread_mutex_lock(&consumer_data.lock);
a9838785 567 pthread_mutex_lock(&stream->chan->lock);
ec6ea7d0 568 pthread_mutex_lock(&stream->chan->timer_lock);
2e818a6a 569 pthread_mutex_lock(&stream->lock);
b0b335c8 570 rcu_read_lock();
e316aad5 571
43c34bc3 572 /* Steal stream identifier to avoid having streams with the same key */
ffe60014 573 steal_stream_key(stream->key, ht);
43c34bc3 574
d88aee68 575 lttng_ht_add_unique_u64(ht, &stream->node);
00e2e675 576
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577 lttng_ht_add_u64(consumer_data.stream_per_chan_id_ht,
578 &stream->node_channel_id);
579
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580 /*
581 * Add stream to the stream_list_ht of the consumer data. No need to steal
582 * the key since the HT does not use it and we allow to add redundant keys
583 * into this table.
584 */
d88aee68 585 lttng_ht_add_u64(consumer_data.stream_list_ht, &stream->node_session_id);
ca22feea 586
e316aad5 587 /*
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588 * When nb_init_stream_left reaches 0, we don't need to trigger any action
589 * in terms of destroying the associated channel, because the action that
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DG
590 * causes the count to become 0 also causes a stream to be added. The
591 * channel deletion will thus be triggered by the following removal of this
592 * stream.
593 */
ffe60014 594 if (uatomic_read(&stream->chan->nb_init_stream_left) > 0) {
f2ad556d
MD
595 /* Increment refcount before decrementing nb_init_stream_left */
596 cmm_smp_wmb();
ffe60014 597 uatomic_dec(&stream->chan->nb_init_stream_left);
e316aad5
DG
598 }
599
600 /* Update consumer data once the node is inserted. */
3bd1e081
MD
601 consumer_data.stream_count++;
602 consumer_data.need_update = 1;
603
e316aad5 604 rcu_read_unlock();
2e818a6a 605 pthread_mutex_unlock(&stream->lock);
ec6ea7d0 606 pthread_mutex_unlock(&stream->chan->timer_lock);
a9838785 607 pthread_mutex_unlock(&stream->chan->lock);
3bd1e081 608 pthread_mutex_unlock(&consumer_data.lock);
702b1ea4 609
3bd1e081
MD
610 return ret;
611}
612
5ab66908
MD
613void consumer_del_data_stream(struct lttng_consumer_stream *stream)
614{
615 consumer_del_stream(stream, data_ht);
616}
617
00e2e675 618/*
3f8e211f
DG
619 * Add relayd socket to global consumer data hashtable. RCU read side lock MUST
620 * be acquired before calling this.
00e2e675 621 */
d09e1200 622static int add_relayd(struct consumer_relayd_sock_pair *relayd)
00e2e675
DG
623{
624 int ret = 0;
d88aee68 625 struct lttng_ht_node_u64 *node;
00e2e675
DG
626 struct lttng_ht_iter iter;
627
ffe60014 628 assert(relayd);
00e2e675 629
00e2e675 630 lttng_ht_lookup(consumer_data.relayd_ht,
d88aee68
DG
631 &relayd->net_seq_idx, &iter);
632 node = lttng_ht_iter_get_node_u64(&iter);
00e2e675 633 if (node != NULL) {
00e2e675
DG
634 goto end;
635 }
d88aee68 636 lttng_ht_add_unique_u64(consumer_data.relayd_ht, &relayd->node);
00e2e675 637
00e2e675
DG
638end:
639 return ret;
640}
641
642/*
643 * Allocate and return a consumer relayd socket.
644 */
645struct consumer_relayd_sock_pair *consumer_allocate_relayd_sock_pair(
da009f2c 646 uint64_t net_seq_idx)
00e2e675
DG
647{
648 struct consumer_relayd_sock_pair *obj = NULL;
649
da009f2c
MD
650 /* net sequence index of -1 is a failure */
651 if (net_seq_idx == (uint64_t) -1ULL) {
00e2e675
DG
652 goto error;
653 }
654
655 obj = zmalloc(sizeof(struct consumer_relayd_sock_pair));
656 if (obj == NULL) {
657 PERROR("zmalloc relayd sock");
658 goto error;
659 }
660
661 obj->net_seq_idx = net_seq_idx;
662 obj->refcount = 0;
173af62f 663 obj->destroy_flag = 0;
f96e4545
MD
664 obj->control_sock.sock.fd = -1;
665 obj->data_sock.sock.fd = -1;
d88aee68 666 lttng_ht_node_init_u64(&obj->node, obj->net_seq_idx);
00e2e675
DG
667 pthread_mutex_init(&obj->ctrl_sock_mutex, NULL);
668
669error:
670 return obj;
671}
672
673/*
674 * Find a relayd socket pair in the global consumer data.
675 *
676 * Return the object if found else NULL.
b0b335c8
MD
677 * RCU read-side lock must be held across this call and while using the
678 * returned object.
00e2e675 679 */
d88aee68 680struct consumer_relayd_sock_pair *consumer_find_relayd(uint64_t key)
00e2e675
DG
681{
682 struct lttng_ht_iter iter;
d88aee68 683 struct lttng_ht_node_u64 *node;
00e2e675
DG
684 struct consumer_relayd_sock_pair *relayd = NULL;
685
686 /* Negative keys are lookup failures */
d88aee68 687 if (key == (uint64_t) -1ULL) {
00e2e675
DG
688 goto error;
689 }
690
d88aee68 691 lttng_ht_lookup(consumer_data.relayd_ht, &key,
00e2e675 692 &iter);
d88aee68 693 node = lttng_ht_iter_get_node_u64(&iter);
00e2e675
DG
694 if (node != NULL) {
695 relayd = caa_container_of(node, struct consumer_relayd_sock_pair, node);
696 }
697
00e2e675
DG
698error:
699 return relayd;
700}
701
10a50311
JD
702/*
703 * Find a relayd and send the stream
704 *
705 * Returns 0 on success, < 0 on error
706 */
707int consumer_send_relayd_stream(struct lttng_consumer_stream *stream,
708 char *path)
709{
710 int ret = 0;
711 struct consumer_relayd_sock_pair *relayd;
712
713 assert(stream);
714 assert(stream->net_seq_idx != -1ULL);
715 assert(path);
716
717 /* The stream is not metadata. Get relayd reference if exists. */
718 rcu_read_lock();
719 relayd = consumer_find_relayd(stream->net_seq_idx);
720 if (relayd != NULL) {
721 /* Add stream on the relayd */
722 pthread_mutex_lock(&relayd->ctrl_sock_mutex);
723 ret = relayd_add_stream(&relayd->control_sock, stream->name,
724 path, &stream->relayd_stream_id,
725 stream->chan->tracefile_size, stream->chan->tracefile_count);
726 pthread_mutex_unlock(&relayd->ctrl_sock_mutex);
727 if (ret < 0) {
728 goto end;
729 }
730 uatomic_inc(&relayd->refcount);
d01178b6 731 stream->sent_to_relayd = 1;
10a50311
JD
732 } else {
733 ERR("Stream %" PRIu64 " relayd ID %" PRIu64 " unknown. Can't send it.",
734 stream->key, stream->net_seq_idx);
735 ret = -1;
736 goto end;
737 }
738
739 DBG("Stream %s with key %" PRIu64 " sent to relayd id %" PRIu64,
740 stream->name, stream->key, stream->net_seq_idx);
741
742end:
743 rcu_read_unlock();
744 return ret;
745}
746
747/*
748 * Find a relayd and close the stream
749 */
750void close_relayd_stream(struct lttng_consumer_stream *stream)
751{
752 struct consumer_relayd_sock_pair *relayd;
753
754 /* The stream is not metadata. Get relayd reference if exists. */
755 rcu_read_lock();
756 relayd = consumer_find_relayd(stream->net_seq_idx);
757 if (relayd) {
758 consumer_stream_relayd_close(stream, relayd);
759 }
760 rcu_read_unlock();
761}
762
00e2e675
DG
763/*
764 * Handle stream for relayd transmission if the stream applies for network
765 * streaming where the net sequence index is set.
766 *
767 * Return destination file descriptor or negative value on error.
768 */
6197aea7 769static int write_relayd_stream_header(struct lttng_consumer_stream *stream,
1d4dfdef
DG
770 size_t data_size, unsigned long padding,
771 struct consumer_relayd_sock_pair *relayd)
00e2e675
DG
772{
773 int outfd = -1, ret;
00e2e675
DG
774 struct lttcomm_relayd_data_hdr data_hdr;
775
776 /* Safety net */
777 assert(stream);
6197aea7 778 assert(relayd);
00e2e675
DG
779
780 /* Reset data header */
781 memset(&data_hdr, 0, sizeof(data_hdr));
782
00e2e675
DG
783 if (stream->metadata_flag) {
784 /* Caller MUST acquire the relayd control socket lock */
785 ret = relayd_send_metadata(&relayd->control_sock, data_size);
786 if (ret < 0) {
787 goto error;
788 }
789
790 /* Metadata are always sent on the control socket. */
6151a90f 791 outfd = relayd->control_sock.sock.fd;
00e2e675
DG
792 } else {
793 /* Set header with stream information */
794 data_hdr.stream_id = htobe64(stream->relayd_stream_id);
795 data_hdr.data_size = htobe32(data_size);
1d4dfdef 796 data_hdr.padding_size = htobe32(padding);
39df6d9f
DG
797 /*
798 * Note that net_seq_num below is assigned with the *current* value of
799 * next_net_seq_num and only after that the next_net_seq_num will be
800 * increment. This is why when issuing a command on the relayd using
801 * this next value, 1 should always be substracted in order to compare
802 * the last seen sequence number on the relayd side to the last sent.
803 */
3604f373 804 data_hdr.net_seq_num = htobe64(stream->next_net_seq_num);
00e2e675
DG
805 /* Other fields are zeroed previously */
806
807 ret = relayd_send_data_hdr(&relayd->data_sock, &data_hdr,
808 sizeof(data_hdr));
809 if (ret < 0) {
810 goto error;
811 }
812
3604f373
DG
813 ++stream->next_net_seq_num;
814
00e2e675 815 /* Set to go on data socket */
6151a90f 816 outfd = relayd->data_sock.sock.fd;
00e2e675
DG
817 }
818
819error:
820 return outfd;
821}
822
3bd1e081 823/*
ffe60014
DG
824 * Allocate and return a new lttng_consumer_channel object using the given key
825 * to initialize the hash table node.
826 *
827 * On error, return NULL.
3bd1e081 828 */
886224ff 829struct lttng_consumer_channel *consumer_allocate_channel(uint64_t key,
ffe60014
DG
830 uint64_t session_id,
831 const char *pathname,
832 const char *name,
833 uid_t uid,
834 gid_t gid,
57a269f2 835 uint64_t relayd_id,
1624d5b7
JD
836 enum lttng_event_output output,
837 uint64_t tracefile_size,
2bba9e53 838 uint64_t tracefile_count,
1950109e 839 uint64_t session_id_per_pid,
2bba9e53 840 unsigned int monitor)
3bd1e081
MD
841{
842 struct lttng_consumer_channel *channel;
3bd1e081 843
276b26d1 844 channel = zmalloc(sizeof(*channel));
3bd1e081 845 if (channel == NULL) {
7a57cf92 846 PERROR("malloc struct lttng_consumer_channel");
3bd1e081
MD
847 goto end;
848 }
ffe60014
DG
849
850 channel->key = key;
3bd1e081 851 channel->refcount = 0;
ffe60014 852 channel->session_id = session_id;
1950109e 853 channel->session_id_per_pid = session_id_per_pid;
ffe60014
DG
854 channel->uid = uid;
855 channel->gid = gid;
856 channel->relayd_id = relayd_id;
1624d5b7
JD
857 channel->tracefile_size = tracefile_size;
858 channel->tracefile_count = tracefile_count;
2bba9e53 859 channel->monitor = monitor;
a9838785 860 pthread_mutex_init(&channel->lock, NULL);
ec6ea7d0 861 pthread_mutex_init(&channel->timer_lock, NULL);
ffe60014 862
3f84e025
DG
863 switch (output) {
864 case LTTNG_EVENT_SPLICE:
865 channel->output = CONSUMER_CHANNEL_SPLICE;
866 break;
867 case LTTNG_EVENT_MMAP:
868 channel->output = CONSUMER_CHANNEL_MMAP;
869 break;
870 default:
871 assert(0);
872 free(channel);
873 channel = NULL;
874 goto end;
875 }
876
07b86b52
JD
877 /*
878 * In monitor mode, the streams associated with the channel will be put in
879 * a special list ONLY owned by this channel. So, the refcount is set to 1
880 * here meaning that the channel itself has streams that are referenced.
881 *
882 * On a channel deletion, once the channel is no longer visible, the
883 * refcount is decremented and checked for a zero value to delete it. With
884 * streams in no monitor mode, it will now be safe to destroy the channel.
885 */
886 if (!channel->monitor) {
887 channel->refcount = 1;
888 }
889
ffe60014
DG
890 strncpy(channel->pathname, pathname, sizeof(channel->pathname));
891 channel->pathname[sizeof(channel->pathname) - 1] = '\0';
892
893 strncpy(channel->name, name, sizeof(channel->name));
894 channel->name[sizeof(channel->name) - 1] = '\0';
895
d88aee68 896 lttng_ht_node_init_u64(&channel->node, channel->key);
d8ef542d
MD
897
898 channel->wait_fd = -1;
899
ffe60014
DG
900 CDS_INIT_LIST_HEAD(&channel->streams.head);
901
d88aee68 902 DBG("Allocated channel (key %" PRIu64 ")", channel->key)
3bd1e081 903
3bd1e081
MD
904end:
905 return channel;
906}
907
908/*
909 * Add a channel to the global list protected by a mutex.
821fffb2
DG
910 *
911 * On success 0 is returned else a negative value.
3bd1e081 912 */
d8ef542d
MD
913int consumer_add_channel(struct lttng_consumer_channel *channel,
914 struct lttng_consumer_local_data *ctx)
3bd1e081 915{
ffe60014 916 int ret = 0;
d88aee68 917 struct lttng_ht_node_u64 *node;
c77fc10a
DG
918 struct lttng_ht_iter iter;
919
3bd1e081 920 pthread_mutex_lock(&consumer_data.lock);
a9838785 921 pthread_mutex_lock(&channel->lock);
ec6ea7d0 922 pthread_mutex_lock(&channel->timer_lock);
6065ceec 923 rcu_read_lock();
c77fc10a 924
7972aab2 925 lttng_ht_lookup(consumer_data.channel_ht, &channel->key, &iter);
d88aee68 926 node = lttng_ht_iter_get_node_u64(&iter);
c77fc10a
DG
927 if (node != NULL) {
928 /* Channel already exist. Ignore the insertion */
d88aee68
DG
929 ERR("Consumer add channel key %" PRIu64 " already exists!",
930 channel->key);
821fffb2 931 ret = -EEXIST;
c77fc10a
DG
932 goto end;
933 }
934
d88aee68 935 lttng_ht_add_unique_u64(consumer_data.channel_ht, &channel->node);
c77fc10a
DG
936
937end:
6065ceec 938 rcu_read_unlock();
ec6ea7d0 939 pthread_mutex_unlock(&channel->timer_lock);
a9838785 940 pthread_mutex_unlock(&channel->lock);
3bd1e081 941 pthread_mutex_unlock(&consumer_data.lock);
702b1ea4 942
d8ef542d 943 if (!ret && channel->wait_fd != -1 &&
10a50311 944 channel->type == CONSUMER_CHANNEL_TYPE_DATA) {
a0cbdd2e 945 notify_channel_pipe(ctx, channel, -1, CONSUMER_CHANNEL_ADD);
d8ef542d 946 }
ffe60014 947 return ret;
3bd1e081
MD
948}
949
950/*
951 * Allocate the pollfd structure and the local view of the out fds to avoid
952 * doing a lookup in the linked list and concurrency issues when writing is
953 * needed. Called with consumer_data.lock held.
954 *
955 * Returns the number of fds in the structures.
956 */
ffe60014
DG
957static int update_poll_array(struct lttng_consumer_local_data *ctx,
958 struct pollfd **pollfd, struct lttng_consumer_stream **local_stream,
959 struct lttng_ht *ht)
3bd1e081 960{
3bd1e081 961 int i = 0;
e4421fec
DG
962 struct lttng_ht_iter iter;
963 struct lttng_consumer_stream *stream;
3bd1e081 964
ffe60014
DG
965 assert(ctx);
966 assert(ht);
967 assert(pollfd);
968 assert(local_stream);
969
3bd1e081 970 DBG("Updating poll fd array");
481d6c57 971 rcu_read_lock();
43c34bc3 972 cds_lfht_for_each_entry(ht->ht, &iter.iter, stream, node.node) {
8994307f
DG
973 /*
974 * Only active streams with an active end point can be added to the
975 * poll set and local stream storage of the thread.
976 *
977 * There is a potential race here for endpoint_status to be updated
978 * just after the check. However, this is OK since the stream(s) will
979 * be deleted once the thread is notified that the end point state has
980 * changed where this function will be called back again.
981 */
982 if (stream->state != LTTNG_CONSUMER_ACTIVE_STREAM ||
79d4ffb7 983 stream->endpoint_status == CONSUMER_ENDPOINT_INACTIVE) {
3bd1e081
MD
984 continue;
985 }
7972aab2
DG
986 /*
987 * This clobbers way too much the debug output. Uncomment that if you
988 * need it for debugging purposes.
989 *
990 * DBG("Active FD %d", stream->wait_fd);
991 */
e4421fec 992 (*pollfd)[i].fd = stream->wait_fd;
3bd1e081 993 (*pollfd)[i].events = POLLIN | POLLPRI;
e4421fec 994 local_stream[i] = stream;
3bd1e081
MD
995 i++;
996 }
481d6c57 997 rcu_read_unlock();
3bd1e081
MD
998
999 /*
50f8ae69 1000 * Insert the consumer_data_pipe at the end of the array and don't
3bd1e081
MD
1001 * increment i so nb_fd is the number of real FD.
1002 */
acdb9057 1003 (*pollfd)[i].fd = lttng_pipe_get_readfd(ctx->consumer_data_pipe);
509bb1cf 1004 (*pollfd)[i].events = POLLIN | POLLPRI;
3bd1e081
MD
1005 return i;
1006}
1007
1008/*
1009 * Poll on the should_quit pipe and the command socket return -1 on error and
1010 * should exit, 0 if data is available on the command socket
1011 */
1012int lttng_consumer_poll_socket(struct pollfd *consumer_sockpoll)
1013{
1014 int num_rdy;
1015
88f2b785 1016restart:
3bd1e081
MD
1017 num_rdy = poll(consumer_sockpoll, 2, -1);
1018 if (num_rdy == -1) {
88f2b785
MD
1019 /*
1020 * Restart interrupted system call.
1021 */
1022 if (errno == EINTR) {
1023 goto restart;
1024 }
7a57cf92 1025 PERROR("Poll error");
3bd1e081
MD
1026 goto exit;
1027 }
509bb1cf 1028 if (consumer_sockpoll[0].revents & (POLLIN | POLLPRI)) {
3bd1e081
MD
1029 DBG("consumer_should_quit wake up");
1030 goto exit;
1031 }
1032 return 0;
1033
1034exit:
1035 return -1;
1036}
1037
1038/*
1039 * Set the error socket.
1040 */
ffe60014
DG
1041void lttng_consumer_set_error_sock(struct lttng_consumer_local_data *ctx,
1042 int sock)
3bd1e081
MD
1043{
1044 ctx->consumer_error_socket = sock;
1045}
1046
1047/*
1048 * Set the command socket path.
1049 */
3bd1e081
MD
1050void lttng_consumer_set_command_sock_path(
1051 struct lttng_consumer_local_data *ctx, char *sock)
1052{
1053 ctx->consumer_command_sock_path = sock;
1054}
1055
1056/*
1057 * Send return code to the session daemon.
1058 * If the socket is not defined, we return 0, it is not a fatal error
1059 */
ffe60014 1060int lttng_consumer_send_error(struct lttng_consumer_local_data *ctx, int cmd)
3bd1e081
MD
1061{
1062 if (ctx->consumer_error_socket > 0) {
1063 return lttcomm_send_unix_sock(ctx->consumer_error_socket, &cmd,
1064 sizeof(enum lttcomm_sessiond_command));
1065 }
1066
1067 return 0;
1068}
1069
1070/*
228b5bf7
DG
1071 * Close all the tracefiles and stream fds and MUST be called when all
1072 * instances are destroyed i.e. when all threads were joined and are ended.
3bd1e081
MD
1073 */
1074void lttng_consumer_cleanup(void)
1075{
e4421fec 1076 struct lttng_ht_iter iter;
ffe60014 1077 struct lttng_consumer_channel *channel;
6065ceec
DG
1078
1079 rcu_read_lock();
3bd1e081 1080
ffe60014
DG
1081 cds_lfht_for_each_entry(consumer_data.channel_ht->ht, &iter.iter, channel,
1082 node.node) {
702b1ea4 1083 consumer_del_channel(channel);
3bd1e081 1084 }
6065ceec
DG
1085
1086 rcu_read_unlock();
d6ce1df2 1087
d6ce1df2 1088 lttng_ht_destroy(consumer_data.channel_ht);
228b5bf7
DG
1089
1090 cleanup_relayd_ht();
1091
d8ef542d
MD
1092 lttng_ht_destroy(consumer_data.stream_per_chan_id_ht);
1093
228b5bf7
DG
1094 /*
1095 * This HT contains streams that are freed by either the metadata thread or
1096 * the data thread so we do *nothing* on the hash table and simply destroy
1097 * it.
1098 */
1099 lttng_ht_destroy(consumer_data.stream_list_ht);
3bd1e081
MD
1100}
1101
1102/*
1103 * Called from signal handler.
1104 */
1105void lttng_consumer_should_exit(struct lttng_consumer_local_data *ctx)
1106{
1107 int ret;
1108 consumer_quit = 1;
6f94560a
MD
1109 do {
1110 ret = write(ctx->consumer_should_quit[1], "4", 1);
1111 } while (ret < 0 && errno == EINTR);
4cec016f 1112 if (ret < 0 || ret != 1) {
7a57cf92 1113 PERROR("write consumer quit");
3bd1e081 1114 }
ab1027f4
DG
1115
1116 DBG("Consumer flag that it should quit");
3bd1e081
MD
1117}
1118
00e2e675
DG
1119void lttng_consumer_sync_trace_file(struct lttng_consumer_stream *stream,
1120 off_t orig_offset)
3bd1e081
MD
1121{
1122 int outfd = stream->out_fd;
1123
1124 /*
1125 * This does a blocking write-and-wait on any page that belongs to the
1126 * subbuffer prior to the one we just wrote.
1127 * Don't care about error values, as these are just hints and ways to
1128 * limit the amount of page cache used.
1129 */
ffe60014 1130 if (orig_offset < stream->max_sb_size) {
3bd1e081
MD
1131 return;
1132 }
ffe60014
DG
1133 lttng_sync_file_range(outfd, orig_offset - stream->max_sb_size,
1134 stream->max_sb_size,
3bd1e081
MD
1135 SYNC_FILE_RANGE_WAIT_BEFORE
1136 | SYNC_FILE_RANGE_WRITE
1137 | SYNC_FILE_RANGE_WAIT_AFTER);
1138 /*
1139 * Give hints to the kernel about how we access the file:
1140 * POSIX_FADV_DONTNEED : we won't re-access data in a near future after
1141 * we write it.
1142 *
1143 * We need to call fadvise again after the file grows because the
1144 * kernel does not seem to apply fadvise to non-existing parts of the
1145 * file.
1146 *
1147 * Call fadvise _after_ having waited for the page writeback to
1148 * complete because the dirty page writeback semantic is not well
1149 * defined. So it can be expected to lead to lower throughput in
1150 * streaming.
1151 */
ffe60014
DG
1152 posix_fadvise(outfd, orig_offset - stream->max_sb_size,
1153 stream->max_sb_size, POSIX_FADV_DONTNEED);
3bd1e081
MD
1154}
1155
1156/*
1157 * Initialise the necessary environnement :
1158 * - create a new context
1159 * - create the poll_pipe
1160 * - create the should_quit pipe (for signal handler)
1161 * - create the thread pipe (for splice)
1162 *
1163 * Takes a function pointer as argument, this function is called when data is
1164 * available on a buffer. This function is responsible to do the
1165 * kernctl_get_next_subbuf, read the data with mmap or splice depending on the
1166 * buffer configuration and then kernctl_put_next_subbuf at the end.
1167 *
1168 * Returns a pointer to the new context or NULL on error.
1169 */
1170struct lttng_consumer_local_data *lttng_consumer_create(
1171 enum lttng_consumer_type type,
4078b776 1172 ssize_t (*buffer_ready)(struct lttng_consumer_stream *stream,
d41f73b7 1173 struct lttng_consumer_local_data *ctx),
3bd1e081
MD
1174 int (*recv_channel)(struct lttng_consumer_channel *channel),
1175 int (*recv_stream)(struct lttng_consumer_stream *stream),
30319bcb 1176 int (*update_stream)(uint64_t stream_key, uint32_t state))
3bd1e081 1177{
d8ef542d 1178 int ret;
3bd1e081
MD
1179 struct lttng_consumer_local_data *ctx;
1180
1181 assert(consumer_data.type == LTTNG_CONSUMER_UNKNOWN ||
1182 consumer_data.type == type);
1183 consumer_data.type = type;
1184
effcf122 1185 ctx = zmalloc(sizeof(struct lttng_consumer_local_data));
3bd1e081 1186 if (ctx == NULL) {
7a57cf92 1187 PERROR("allocating context");
3bd1e081
MD
1188 goto error;
1189 }
1190
1191 ctx->consumer_error_socket = -1;
331744e3 1192 ctx->consumer_metadata_socket = -1;
75d83e50 1193 pthread_mutex_init(&ctx->metadata_socket_lock, NULL);
3bd1e081
MD
1194 /* assign the callbacks */
1195 ctx->on_buffer_ready = buffer_ready;
1196 ctx->on_recv_channel = recv_channel;
1197 ctx->on_recv_stream = recv_stream;
1198 ctx->on_update_stream = update_stream;
1199
acdb9057
DG
1200 ctx->consumer_data_pipe = lttng_pipe_open(0);
1201 if (!ctx->consumer_data_pipe) {
3bd1e081
MD
1202 goto error_poll_pipe;
1203 }
1204
1205 ret = pipe(ctx->consumer_should_quit);
1206 if (ret < 0) {
7a57cf92 1207 PERROR("Error creating recv pipe");
3bd1e081
MD
1208 goto error_quit_pipe;
1209 }
1210
1211 ret = pipe(ctx->consumer_thread_pipe);
1212 if (ret < 0) {
7a57cf92 1213 PERROR("Error creating thread pipe");
3bd1e081
MD
1214 goto error_thread_pipe;
1215 }
1216
d8ef542d
MD
1217 ret = pipe(ctx->consumer_channel_pipe);
1218 if (ret < 0) {
1219 PERROR("Error creating channel pipe");
1220 goto error_channel_pipe;
1221 }
1222
13886d2d
DG
1223 ctx->consumer_metadata_pipe = lttng_pipe_open(0);
1224 if (!ctx->consumer_metadata_pipe) {
fb3a43a9
DG
1225 goto error_metadata_pipe;
1226 }
3bd1e081 1227
fb3a43a9
DG
1228 ret = utils_create_pipe(ctx->consumer_splice_metadata_pipe);
1229 if (ret < 0) {
1230 goto error_splice_pipe;
1231 }
1232
1233 return ctx;
3bd1e081 1234
fb3a43a9 1235error_splice_pipe:
13886d2d 1236 lttng_pipe_destroy(ctx->consumer_metadata_pipe);
fb3a43a9 1237error_metadata_pipe:
d8ef542d
MD
1238 utils_close_pipe(ctx->consumer_channel_pipe);
1239error_channel_pipe:
fb3a43a9 1240 utils_close_pipe(ctx->consumer_thread_pipe);
3bd1e081 1241error_thread_pipe:
d8ef542d 1242 utils_close_pipe(ctx->consumer_should_quit);
3bd1e081 1243error_quit_pipe:
acdb9057 1244 lttng_pipe_destroy(ctx->consumer_data_pipe);
3bd1e081
MD
1245error_poll_pipe:
1246 free(ctx);
1247error:
1248 return NULL;
1249}
1250
ab62752a
MD
1251/*
1252 * Iterate over all streams of the hashtable and free them properly.
1253 */
1254static void destroy_data_stream_ht(struct lttng_ht *ht)
1255{
1256 struct lttng_ht_iter iter;
1257 struct lttng_consumer_stream *stream;
1258
1259 if (ht == NULL) {
1260 return;
1261 }
1262
1263 rcu_read_lock();
1264 cds_lfht_for_each_entry(ht->ht, &iter.iter, stream, node.node) {
1265 /*
1266 * Ignore return value since we are currently cleaning up so any error
1267 * can't be handled.
1268 */
1269 (void) consumer_del_stream(stream, ht);
1270 }
1271 rcu_read_unlock();
1272
1273 lttng_ht_destroy(ht);
1274}
1275
1276/*
1277 * Iterate over all streams of the metadata hashtable and free them
1278 * properly.
1279 */
1280static void destroy_metadata_stream_ht(struct lttng_ht *ht)
1281{
1282 struct lttng_ht_iter iter;
1283 struct lttng_consumer_stream *stream;
1284
1285 if (ht == NULL) {
1286 return;
1287 }
1288
1289 rcu_read_lock();
1290 cds_lfht_for_each_entry(ht->ht, &iter.iter, stream, node.node) {
1291 /*
1292 * Ignore return value since we are currently cleaning up so any error
1293 * can't be handled.
1294 */
1295 (void) consumer_del_metadata_stream(stream, ht);
1296 }
1297 rcu_read_unlock();
1298
1299 lttng_ht_destroy(ht);
1300}
1301
3bd1e081
MD
1302/*
1303 * Close all fds associated with the instance and free the context.
1304 */
1305void lttng_consumer_destroy(struct lttng_consumer_local_data *ctx)
1306{
4c462e79
MD
1307 int ret;
1308
ab1027f4
DG
1309 DBG("Consumer destroying it. Closing everything.");
1310
e75c3b32
DG
1311 if (!ctx) {
1312 return;
1313 }
1314
ab62752a
MD
1315 destroy_data_stream_ht(data_ht);
1316 destroy_metadata_stream_ht(metadata_ht);
1317
4c462e79
MD
1318 ret = close(ctx->consumer_error_socket);
1319 if (ret) {
1320 PERROR("close");
1321 }
331744e3
JD
1322 ret = close(ctx->consumer_metadata_socket);
1323 if (ret) {
1324 PERROR("close");
1325 }
d8ef542d
MD
1326 utils_close_pipe(ctx->consumer_thread_pipe);
1327 utils_close_pipe(ctx->consumer_channel_pipe);
acdb9057 1328 lttng_pipe_destroy(ctx->consumer_data_pipe);
13886d2d 1329 lttng_pipe_destroy(ctx->consumer_metadata_pipe);
d8ef542d 1330 utils_close_pipe(ctx->consumer_should_quit);
fb3a43a9
DG
1331 utils_close_pipe(ctx->consumer_splice_metadata_pipe);
1332
3bd1e081
MD
1333 unlink(ctx->consumer_command_sock_path);
1334 free(ctx);
1335}
1336
6197aea7
DG
1337/*
1338 * Write the metadata stream id on the specified file descriptor.
1339 */
1340static int write_relayd_metadata_id(int fd,
1341 struct lttng_consumer_stream *stream,
ffe60014 1342 struct consumer_relayd_sock_pair *relayd, unsigned long padding)
6197aea7
DG
1343{
1344 int ret;
1d4dfdef 1345 struct lttcomm_relayd_metadata_payload hdr;
6197aea7 1346
1d4dfdef
DG
1347 hdr.stream_id = htobe64(stream->relayd_stream_id);
1348 hdr.padding_size = htobe32(padding);
6197aea7 1349 do {
1d4dfdef 1350 ret = write(fd, (void *) &hdr, sizeof(hdr));
6197aea7 1351 } while (ret < 0 && errno == EINTR);
4cec016f 1352 if (ret < 0 || ret != sizeof(hdr)) {
d7b75ec8
DG
1353 /*
1354 * This error means that the fd's end is closed so ignore the perror
1355 * not to clubber the error output since this can happen in a normal
1356 * code path.
1357 */
1358 if (errno != EPIPE) {
1359 PERROR("write metadata stream id");
1360 }
1361 DBG3("Consumer failed to write relayd metadata id (errno: %d)", errno);
534d2592
DG
1362 /*
1363 * Set ret to a negative value because if ret != sizeof(hdr), we don't
1364 * handle writting the missing part so report that as an error and
1365 * don't lie to the caller.
1366 */
1367 ret = -1;
6197aea7
DG
1368 goto end;
1369 }
1d4dfdef
DG
1370 DBG("Metadata stream id %" PRIu64 " with padding %lu written before data",
1371 stream->relayd_stream_id, padding);
6197aea7
DG
1372
1373end:
1374 return ret;
1375}
1376
3bd1e081 1377/*
09e26845
DG
1378 * Mmap the ring buffer, read it and write the data to the tracefile. This is a
1379 * core function for writing trace buffers to either the local filesystem or
1380 * the network.
1381 *
79d4ffb7
DG
1382 * It must be called with the stream lock held.
1383 *
09e26845 1384 * Careful review MUST be put if any changes occur!
3bd1e081
MD
1385 *
1386 * Returns the number of bytes written
1387 */
4078b776 1388ssize_t lttng_consumer_on_read_subbuffer_mmap(
3bd1e081 1389 struct lttng_consumer_local_data *ctx,
1d4dfdef
DG
1390 struct lttng_consumer_stream *stream, unsigned long len,
1391 unsigned long padding)
3bd1e081 1392{
f02e1e8a 1393 unsigned long mmap_offset;
ffe60014 1394 void *mmap_base;
f02e1e8a
DG
1395 ssize_t ret = 0, written = 0;
1396 off_t orig_offset = stream->out_fd_offset;
1397 /* Default is on the disk */
1398 int outfd = stream->out_fd;
f02e1e8a 1399 struct consumer_relayd_sock_pair *relayd = NULL;
8994307f 1400 unsigned int relayd_hang_up = 0;
f02e1e8a
DG
1401
1402 /* RCU lock for the relayd pointer */
1403 rcu_read_lock();
1404
1405 /* Flag that the current stream if set for network streaming. */
da009f2c 1406 if (stream->net_seq_idx != (uint64_t) -1ULL) {
f02e1e8a
DG
1407 relayd = consumer_find_relayd(stream->net_seq_idx);
1408 if (relayd == NULL) {
56591bac 1409 ret = -EPIPE;
f02e1e8a
DG
1410 goto end;
1411 }
1412 }
1413
1414 /* get the offset inside the fd to mmap */
3bd1e081
MD
1415 switch (consumer_data.type) {
1416 case LTTNG_CONSUMER_KERNEL:
ffe60014 1417 mmap_base = stream->mmap_base;
f02e1e8a 1418 ret = kernctl_get_mmap_read_offset(stream->wait_fd, &mmap_offset);
56591bac
MD
1419 if (ret != 0) {
1420 PERROR("tracer ctl get_mmap_read_offset");
1421 written = -errno;
1422 goto end;
1423 }
f02e1e8a 1424 break;
7753dea8
MD
1425 case LTTNG_CONSUMER32_UST:
1426 case LTTNG_CONSUMER64_UST:
ffe60014
DG
1427 mmap_base = lttng_ustctl_get_mmap_base(stream);
1428 if (!mmap_base) {
1429 ERR("read mmap get mmap base for stream %s", stream->name);
56591bac 1430 written = -EPERM;
ffe60014
DG
1431 goto end;
1432 }
1433 ret = lttng_ustctl_get_mmap_read_offset(stream, &mmap_offset);
56591bac
MD
1434 if (ret != 0) {
1435 PERROR("tracer ctl get_mmap_read_offset");
1436 written = ret;
1437 goto end;
1438 }
f02e1e8a 1439 break;
3bd1e081
MD
1440 default:
1441 ERR("Unknown consumer_data type");
1442 assert(0);
1443 }
b9182dd9 1444
f02e1e8a
DG
1445 /* Handle stream on the relayd if the output is on the network */
1446 if (relayd) {
1447 unsigned long netlen = len;
1448
1449 /*
1450 * Lock the control socket for the complete duration of the function
1451 * since from this point on we will use the socket.
1452 */
1453 if (stream->metadata_flag) {
1454 /* Metadata requires the control socket. */
1455 pthread_mutex_lock(&relayd->ctrl_sock_mutex);
1d4dfdef 1456 netlen += sizeof(struct lttcomm_relayd_metadata_payload);
f02e1e8a
DG
1457 }
1458
1d4dfdef 1459 ret = write_relayd_stream_header(stream, netlen, padding, relayd);
f02e1e8a
DG
1460 if (ret >= 0) {
1461 /* Use the returned socket. */
1462 outfd = ret;
1463
1464 /* Write metadata stream id before payload */
1465 if (stream->metadata_flag) {
1d4dfdef 1466 ret = write_relayd_metadata_id(outfd, stream, relayd, padding);
f02e1e8a 1467 if (ret < 0) {
f02e1e8a 1468 written = ret;
8994307f
DG
1469 /* Socket operation failed. We consider the relayd dead */
1470 if (ret == -EPIPE || ret == -EINVAL) {
1471 relayd_hang_up = 1;
1472 goto write_error;
1473 }
f02e1e8a
DG
1474 goto end;
1475 }
f02e1e8a 1476 }
8994307f
DG
1477 } else {
1478 /* Socket operation failed. We consider the relayd dead */
1479 if (ret == -EPIPE || ret == -EINVAL) {
1480 relayd_hang_up = 1;
1481 goto write_error;
1482 }
1483 /* Else, use the default set before which is the filesystem. */
f02e1e8a 1484 }
1d4dfdef
DG
1485 } else {
1486 /* No streaming, we have to set the len with the full padding */
1487 len += padding;
1624d5b7
JD
1488
1489 /*
1490 * Check if we need to change the tracefile before writing the packet.
1491 */
1492 if (stream->chan->tracefile_size > 0 &&
1493 (stream->tracefile_size_current + len) >
1494 stream->chan->tracefile_size) {
fe4477ee
JD
1495 ret = utils_rotate_stream_file(stream->chan->pathname,
1496 stream->name, stream->chan->tracefile_size,
1497 stream->chan->tracefile_count, stream->uid, stream->gid,
1498 stream->out_fd, &(stream->tracefile_count_current));
1624d5b7
JD
1499 if (ret < 0) {
1500 ERR("Rotating output file");
1501 goto end;
1502 }
fe4477ee 1503 outfd = stream->out_fd = ret;
a6976990
DG
1504 /* Reset current size because we just perform a rotation. */
1505 stream->tracefile_size_current = 0;
a1ae300f
JD
1506 stream->out_fd_offset = 0;
1507 orig_offset = 0;
1624d5b7
JD
1508 }
1509 stream->tracefile_size_current += len;
f02e1e8a
DG
1510 }
1511
1512 while (len > 0) {
1513 do {
ffe60014 1514 ret = write(outfd, mmap_base + mmap_offset, len);
f02e1e8a 1515 } while (ret < 0 && errno == EINTR);
1d4dfdef 1516 DBG("Consumer mmap write() ret %zd (len %lu)", ret, len);
f02e1e8a 1517 if (ret < 0) {
c5c45efa
DG
1518 /*
1519 * This is possible if the fd is closed on the other side (outfd)
1520 * or any write problem. It can be verbose a bit for a normal
1521 * execution if for instance the relayd is stopped abruptly. This
1522 * can happen so set this to a DBG statement.
1523 */
1524 DBG("Error in file write mmap");
f02e1e8a 1525 if (written == 0) {
56591bac 1526 written = -errno;
f02e1e8a 1527 }
8994307f
DG
1528 /* Socket operation failed. We consider the relayd dead */
1529 if (errno == EPIPE || errno == EINVAL) {
1530 relayd_hang_up = 1;
1531 goto write_error;
1532 }
f02e1e8a
DG
1533 goto end;
1534 } else if (ret > len) {
77c7c900 1535 PERROR("Error in file write (ret %zd > len %lu)", ret, len);
f02e1e8a
DG
1536 written += ret;
1537 goto end;
1538 } else {
1539 len -= ret;
1540 mmap_offset += ret;
1541 }
f02e1e8a
DG
1542
1543 /* This call is useless on a socket so better save a syscall. */
1544 if (!relayd) {
1545 /* This won't block, but will start writeout asynchronously */
1546 lttng_sync_file_range(outfd, stream->out_fd_offset, ret,
1547 SYNC_FILE_RANGE_WRITE);
1548 stream->out_fd_offset += ret;
1549 }
e5d1a9b3 1550 stream->output_written += ret;
f02e1e8a
DG
1551 written += ret;
1552 }
1553 lttng_consumer_sync_trace_file(stream, orig_offset);
1554
8994307f
DG
1555write_error:
1556 /*
1557 * This is a special case that the relayd has closed its socket. Let's
1558 * cleanup the relayd object and all associated streams.
1559 */
1560 if (relayd && relayd_hang_up) {
1561 cleanup_relayd(relayd, ctx);
1562 }
1563
f02e1e8a
DG
1564end:
1565 /* Unlock only if ctrl socket used */
1566 if (relayd && stream->metadata_flag) {
1567 pthread_mutex_unlock(&relayd->ctrl_sock_mutex);
1568 }
1569
1570 rcu_read_unlock();
1571 return written;
3bd1e081
MD
1572}
1573
1574/*
1575 * Splice the data from the ring buffer to the tracefile.
1576 *
79d4ffb7
DG
1577 * It must be called with the stream lock held.
1578 *
3bd1e081
MD
1579 * Returns the number of bytes spliced.
1580 */
4078b776 1581ssize_t lttng_consumer_on_read_subbuffer_splice(
3bd1e081 1582 struct lttng_consumer_local_data *ctx,
1d4dfdef
DG
1583 struct lttng_consumer_stream *stream, unsigned long len,
1584 unsigned long padding)
3bd1e081 1585{
f02e1e8a
DG
1586 ssize_t ret = 0, written = 0, ret_splice = 0;
1587 loff_t offset = 0;
1588 off_t orig_offset = stream->out_fd_offset;
1589 int fd = stream->wait_fd;
1590 /* Default is on the disk */
1591 int outfd = stream->out_fd;
f02e1e8a 1592 struct consumer_relayd_sock_pair *relayd = NULL;
fb3a43a9 1593 int *splice_pipe;
8994307f 1594 unsigned int relayd_hang_up = 0;
f02e1e8a 1595
3bd1e081
MD
1596 switch (consumer_data.type) {
1597 case LTTNG_CONSUMER_KERNEL:
f02e1e8a 1598 break;
7753dea8
MD
1599 case LTTNG_CONSUMER32_UST:
1600 case LTTNG_CONSUMER64_UST:
f02e1e8a 1601 /* Not supported for user space tracing */
3bd1e081
MD
1602 return -ENOSYS;
1603 default:
1604 ERR("Unknown consumer_data type");
1605 assert(0);
3bd1e081
MD
1606 }
1607
f02e1e8a
DG
1608 /* RCU lock for the relayd pointer */
1609 rcu_read_lock();
1610
1611 /* Flag that the current stream if set for network streaming. */
da009f2c 1612 if (stream->net_seq_idx != (uint64_t) -1ULL) {
f02e1e8a
DG
1613 relayd = consumer_find_relayd(stream->net_seq_idx);
1614 if (relayd == NULL) {
56591bac 1615 ret = -EPIPE;
f02e1e8a
DG
1616 goto end;
1617 }
1618 }
1619
fb3a43a9
DG
1620 /*
1621 * Choose right pipe for splice. Metadata and trace data are handled by
1622 * different threads hence the use of two pipes in order not to race or
1623 * corrupt the written data.
1624 */
1625 if (stream->metadata_flag) {
1626 splice_pipe = ctx->consumer_splice_metadata_pipe;
1627 } else {
1628 splice_pipe = ctx->consumer_thread_pipe;
1629 }
1630
f02e1e8a 1631 /* Write metadata stream id before payload */
1d4dfdef
DG
1632 if (relayd) {
1633 int total_len = len;
f02e1e8a 1634
1d4dfdef
DG
1635 if (stream->metadata_flag) {
1636 /*
1637 * Lock the control socket for the complete duration of the function
1638 * since from this point on we will use the socket.
1639 */
1640 pthread_mutex_lock(&relayd->ctrl_sock_mutex);
1641
1642 ret = write_relayd_metadata_id(splice_pipe[1], stream, relayd,
1643 padding);
1644 if (ret < 0) {
1645 written = ret;
8994307f
DG
1646 /* Socket operation failed. We consider the relayd dead */
1647 if (ret == -EBADF) {
1648 WARN("Remote relayd disconnected. Stopping");
1649 relayd_hang_up = 1;
1650 goto write_error;
1651 }
1d4dfdef
DG
1652 goto end;
1653 }
1654
1655 total_len += sizeof(struct lttcomm_relayd_metadata_payload);
1656 }
1657
1658 ret = write_relayd_stream_header(stream, total_len, padding, relayd);
1659 if (ret >= 0) {
1660 /* Use the returned socket. */
1661 outfd = ret;
1662 } else {
8994307f
DG
1663 /* Socket operation failed. We consider the relayd dead */
1664 if (ret == -EBADF) {
1665 WARN("Remote relayd disconnected. Stopping");
1666 relayd_hang_up = 1;
1667 goto write_error;
1668 }
f02e1e8a
DG
1669 goto end;
1670 }
1d4dfdef
DG
1671 } else {
1672 /* No streaming, we have to set the len with the full padding */
1673 len += padding;
1624d5b7
JD
1674
1675 /*
1676 * Check if we need to change the tracefile before writing the packet.
1677 */
1678 if (stream->chan->tracefile_size > 0 &&
1679 (stream->tracefile_size_current + len) >
1680 stream->chan->tracefile_size) {
fe4477ee
JD
1681 ret = utils_rotate_stream_file(stream->chan->pathname,
1682 stream->name, stream->chan->tracefile_size,
1683 stream->chan->tracefile_count, stream->uid, stream->gid,
1684 stream->out_fd, &(stream->tracefile_count_current));
1624d5b7
JD
1685 if (ret < 0) {
1686 ERR("Rotating output file");
1687 goto end;
1688 }
fe4477ee 1689 outfd = stream->out_fd = ret;
a6976990
DG
1690 /* Reset current size because we just perform a rotation. */
1691 stream->tracefile_size_current = 0;
a1ae300f
JD
1692 stream->out_fd_offset = 0;
1693 orig_offset = 0;
1624d5b7
JD
1694 }
1695 stream->tracefile_size_current += len;
f02e1e8a
DG
1696 }
1697
1698 while (len > 0) {
1d4dfdef
DG
1699 DBG("splice chan to pipe offset %lu of len %lu (fd : %d, pipe: %d)",
1700 (unsigned long)offset, len, fd, splice_pipe[1]);
fb3a43a9 1701 ret_splice = splice(fd, &offset, splice_pipe[1], NULL, len,
f02e1e8a
DG
1702 SPLICE_F_MOVE | SPLICE_F_MORE);
1703 DBG("splice chan to pipe, ret %zd", ret_splice);
1704 if (ret_splice < 0) {
1705 PERROR("Error in relay splice");
1706 if (written == 0) {
1707 written = ret_splice;
1708 }
1709 ret = errno;
1710 goto splice_error;
1711 }
1712
1713 /* Handle stream on the relayd if the output is on the network */
1714 if (relayd) {
1715 if (stream->metadata_flag) {
1d4dfdef
DG
1716 size_t metadata_payload_size =
1717 sizeof(struct lttcomm_relayd_metadata_payload);
1718
f02e1e8a 1719 /* Update counter to fit the spliced data */
1d4dfdef
DG
1720 ret_splice += metadata_payload_size;
1721 len += metadata_payload_size;
f02e1e8a
DG
1722 /*
1723 * We do this so the return value can match the len passed as
1724 * argument to this function.
1725 */
1d4dfdef 1726 written -= metadata_payload_size;
f02e1e8a
DG
1727 }
1728 }
1729
1730 /* Splice data out */
fb3a43a9 1731 ret_splice = splice(splice_pipe[0], NULL, outfd, NULL,
f02e1e8a 1732 ret_splice, SPLICE_F_MOVE | SPLICE_F_MORE);
1d4dfdef 1733 DBG("Consumer splice pipe to file, ret %zd", ret_splice);
f02e1e8a
DG
1734 if (ret_splice < 0) {
1735 PERROR("Error in file splice");
1736 if (written == 0) {
1737 written = ret_splice;
1738 }
8994307f 1739 /* Socket operation failed. We consider the relayd dead */
00c8752b 1740 if (errno == EBADF || errno == EPIPE) {
8994307f
DG
1741 WARN("Remote relayd disconnected. Stopping");
1742 relayd_hang_up = 1;
1743 goto write_error;
1744 }
f02e1e8a
DG
1745 ret = errno;
1746 goto splice_error;
1747 } else if (ret_splice > len) {
1748 errno = EINVAL;
1749 PERROR("Wrote more data than requested %zd (len: %lu)",
1750 ret_splice, len);
1751 written += ret_splice;
1752 ret = errno;
1753 goto splice_error;
1754 }
1755 len -= ret_splice;
1756
1757 /* This call is useless on a socket so better save a syscall. */
1758 if (!relayd) {
1759 /* This won't block, but will start writeout asynchronously */
1760 lttng_sync_file_range(outfd, stream->out_fd_offset, ret_splice,
1761 SYNC_FILE_RANGE_WRITE);
1762 stream->out_fd_offset += ret_splice;
1763 }
e5d1a9b3 1764 stream->output_written += ret_splice;
f02e1e8a
DG
1765 written += ret_splice;
1766 }
1767 lttng_consumer_sync_trace_file(stream, orig_offset);
1768
1769 ret = ret_splice;
1770
1771 goto end;
1772
8994307f
DG
1773write_error:
1774 /*
1775 * This is a special case that the relayd has closed its socket. Let's
1776 * cleanup the relayd object and all associated streams.
1777 */
1778 if (relayd && relayd_hang_up) {
1779 cleanup_relayd(relayd, ctx);
1780 /* Skip splice error so the consumer does not fail */
1781 goto end;
1782 }
1783
f02e1e8a
DG
1784splice_error:
1785 /* send the appropriate error description to sessiond */
1786 switch (ret) {
f02e1e8a 1787 case EINVAL:
f73fabfd 1788 lttng_consumer_send_error(ctx, LTTCOMM_CONSUMERD_SPLICE_EINVAL);
f02e1e8a
DG
1789 break;
1790 case ENOMEM:
f73fabfd 1791 lttng_consumer_send_error(ctx, LTTCOMM_CONSUMERD_SPLICE_ENOMEM);
f02e1e8a
DG
1792 break;
1793 case ESPIPE:
f73fabfd 1794 lttng_consumer_send_error(ctx, LTTCOMM_CONSUMERD_SPLICE_ESPIPE);
f02e1e8a
DG
1795 break;
1796 }
1797
1798end:
1799 if (relayd && stream->metadata_flag) {
1800 pthread_mutex_unlock(&relayd->ctrl_sock_mutex);
1801 }
1802
1803 rcu_read_unlock();
1804 return written;
3bd1e081
MD
1805}
1806
1807/*
1808 * Take a snapshot for a specific fd
1809 *
1810 * Returns 0 on success, < 0 on error
1811 */
ffe60014 1812int lttng_consumer_take_snapshot(struct lttng_consumer_stream *stream)
3bd1e081
MD
1813{
1814 switch (consumer_data.type) {
1815 case LTTNG_CONSUMER_KERNEL:
ffe60014 1816 return lttng_kconsumer_take_snapshot(stream);
7753dea8
MD
1817 case LTTNG_CONSUMER32_UST:
1818 case LTTNG_CONSUMER64_UST:
ffe60014 1819 return lttng_ustconsumer_take_snapshot(stream);
3bd1e081
MD
1820 default:
1821 ERR("Unknown consumer_data type");
1822 assert(0);
1823 return -ENOSYS;
1824 }
3bd1e081
MD
1825}
1826
1827/*
1828 * Get the produced position
1829 *
1830 * Returns 0 on success, < 0 on error
1831 */
ffe60014 1832int lttng_consumer_get_produced_snapshot(struct lttng_consumer_stream *stream,
3bd1e081
MD
1833 unsigned long *pos)
1834{
1835 switch (consumer_data.type) {
1836 case LTTNG_CONSUMER_KERNEL:
ffe60014 1837 return lttng_kconsumer_get_produced_snapshot(stream, pos);
7753dea8
MD
1838 case LTTNG_CONSUMER32_UST:
1839 case LTTNG_CONSUMER64_UST:
ffe60014 1840 return lttng_ustconsumer_get_produced_snapshot(stream, pos);
3bd1e081
MD
1841 default:
1842 ERR("Unknown consumer_data type");
1843 assert(0);
1844 return -ENOSYS;
1845 }
1846}
1847
1848int lttng_consumer_recv_cmd(struct lttng_consumer_local_data *ctx,
1849 int sock, struct pollfd *consumer_sockpoll)
1850{
1851 switch (consumer_data.type) {
1852 case LTTNG_CONSUMER_KERNEL:
1853 return lttng_kconsumer_recv_cmd(ctx, sock, consumer_sockpoll);
7753dea8
MD
1854 case LTTNG_CONSUMER32_UST:
1855 case LTTNG_CONSUMER64_UST:
3bd1e081
MD
1856 return lttng_ustconsumer_recv_cmd(ctx, sock, consumer_sockpoll);
1857 default:
1858 ERR("Unknown consumer_data type");
1859 assert(0);
1860 return -ENOSYS;
1861 }
1862}
1863
d88aee68
DG
1864void lttng_consumer_close_metadata(void)
1865{
1866 switch (consumer_data.type) {
1867 case LTTNG_CONSUMER_KERNEL:
1868 /*
1869 * The Kernel consumer has a different metadata scheme so we don't
1870 * close anything because the stream will be closed by the session
1871 * daemon.
1872 */
1873 break;
1874 case LTTNG_CONSUMER32_UST:
1875 case LTTNG_CONSUMER64_UST:
1876 /*
1877 * Close all metadata streams. The metadata hash table is passed and
1878 * this call iterates over it by closing all wakeup fd. This is safe
1879 * because at this point we are sure that the metadata producer is
1880 * either dead or blocked.
1881 */
1882 lttng_ustconsumer_close_metadata(metadata_ht);
1883 break;
1884 default:
1885 ERR("Unknown consumer_data type");
1886 assert(0);
1887 }
1888}
1889
fb3a43a9
DG
1890/*
1891 * Clean up a metadata stream and free its memory.
1892 */
e316aad5
DG
1893void consumer_del_metadata_stream(struct lttng_consumer_stream *stream,
1894 struct lttng_ht *ht)
fb3a43a9
DG
1895{
1896 int ret;
e316aad5
DG
1897 struct lttng_ht_iter iter;
1898 struct lttng_consumer_channel *free_chan = NULL;
fb3a43a9
DG
1899 struct consumer_relayd_sock_pair *relayd;
1900
1901 assert(stream);
1902 /*
1903 * This call should NEVER receive regular stream. It must always be
1904 * metadata stream and this is crucial for data structure synchronization.
1905 */
1906 assert(stream->metadata_flag);
1907
e316aad5
DG
1908 DBG3("Consumer delete metadata stream %d", stream->wait_fd);
1909
1910 if (ht == NULL) {
1911 /* Means the stream was allocated but not successfully added */
ffe60014 1912 goto free_stream_rcu;
e316aad5
DG
1913 }
1914
74251bb8 1915 pthread_mutex_lock(&consumer_data.lock);
a9838785 1916 pthread_mutex_lock(&stream->chan->lock);
8994307f
DG
1917 pthread_mutex_lock(&stream->lock);
1918
fb3a43a9
DG
1919 switch (consumer_data.type) {
1920 case LTTNG_CONSUMER_KERNEL:
1921 if (stream->mmap_base != NULL) {
1922 ret = munmap(stream->mmap_base, stream->mmap_len);
1923 if (ret != 0) {
1924 PERROR("munmap metadata stream");
1925 }
1926 }
4c95e622
JD
1927 if (stream->wait_fd >= 0) {
1928 ret = close(stream->wait_fd);
1929 if (ret < 0) {
1930 PERROR("close kernel metadata wait_fd");
1931 }
1932 }
fb3a43a9
DG
1933 break;
1934 case LTTNG_CONSUMER32_UST:
1935 case LTTNG_CONSUMER64_UST:
04ef1097
MD
1936 if (stream->monitor) {
1937 /* close the write-side in close_metadata */
1938 ret = close(stream->ust_metadata_poll_pipe[0]);
1939 if (ret < 0) {
1940 PERROR("Close UST metadata read-side poll pipe");
1941 }
1942 }
fb3a43a9
DG
1943 lttng_ustconsumer_del_stream(stream);
1944 break;
1945 default:
1946 ERR("Unknown consumer_data type");
1947 assert(0);
e316aad5 1948 goto end;
fb3a43a9 1949 }
fb3a43a9 1950
c869f647 1951 rcu_read_lock();
58b1f425 1952 iter.iter.node = &stream->node.node;
c869f647
DG
1953 ret = lttng_ht_del(ht, &iter);
1954 assert(!ret);
ca22feea 1955
d8ef542d
MD
1956 iter.iter.node = &stream->node_channel_id.node;
1957 ret = lttng_ht_del(consumer_data.stream_per_chan_id_ht, &iter);
1958 assert(!ret);
1959
ca22feea
DG
1960 iter.iter.node = &stream->node_session_id.node;
1961 ret = lttng_ht_del(consumer_data.stream_list_ht, &iter);
1962 assert(!ret);
c869f647
DG
1963 rcu_read_unlock();
1964
fb3a43a9
DG
1965 if (stream->out_fd >= 0) {
1966 ret = close(stream->out_fd);
1967 if (ret) {
1968 PERROR("close");
1969 }
1970 }
1971
fb3a43a9
DG
1972 /* Check and cleanup relayd */
1973 rcu_read_lock();
1974 relayd = consumer_find_relayd(stream->net_seq_idx);
1975 if (relayd != NULL) {
1976 uatomic_dec(&relayd->refcount);
1977 assert(uatomic_read(&relayd->refcount) >= 0);
1978
1979 /* Closing streams requires to lock the control socket. */
1980 pthread_mutex_lock(&relayd->ctrl_sock_mutex);
1981 ret = relayd_send_close_stream(&relayd->control_sock,
1982 stream->relayd_stream_id, stream->next_net_seq_num - 1);
1983 pthread_mutex_unlock(&relayd->ctrl_sock_mutex);
1984 if (ret < 0) {
1985 DBG("Unable to close stream on the relayd. Continuing");
1986 /*
1987 * Continue here. There is nothing we can do for the relayd.
1988 * Chances are that the relayd has closed the socket so we just
1989 * continue cleaning up.
1990 */
1991 }
1992
1993 /* Both conditions are met, we destroy the relayd. */
1994 if (uatomic_read(&relayd->refcount) == 0 &&
1995 uatomic_read(&relayd->destroy_flag)) {
51230d70 1996 consumer_destroy_relayd(relayd);
fb3a43a9
DG
1997 }
1998 }
1999 rcu_read_unlock();
2000
2001 /* Atomically decrement channel refcount since other threads can use it. */
f2ad556d 2002 if (!uatomic_sub_return(&stream->chan->refcount, 1)
ffe60014 2003 && !uatomic_read(&stream->chan->nb_init_stream_left)) {
c30aaa51 2004 /* Go for channel deletion! */
e316aad5 2005 free_chan = stream->chan;
fb3a43a9
DG
2006 }
2007
e316aad5 2008end:
73811ecc
DG
2009 /*
2010 * Nullify the stream reference so it is not used after deletion. The
5e41ebe1
MD
2011 * channel lock MUST be acquired before being able to check for
2012 * a NULL pointer value.
73811ecc
DG
2013 */
2014 stream->chan->metadata_stream = NULL;
2015
8994307f 2016 pthread_mutex_unlock(&stream->lock);
a9838785 2017 pthread_mutex_unlock(&stream->chan->lock);
74251bb8 2018 pthread_mutex_unlock(&consumer_data.lock);
e316aad5
DG
2019
2020 if (free_chan) {
2021 consumer_del_channel(free_chan);
2022 }
2023
ffe60014
DG
2024free_stream_rcu:
2025 call_rcu(&stream->node.head, free_stream_rcu);
fb3a43a9
DG
2026}
2027
2028/*
2029 * Action done with the metadata stream when adding it to the consumer internal
2030 * data structures to handle it.
2031 */
5ab66908 2032int consumer_add_metadata_stream(struct lttng_consumer_stream *stream)
fb3a43a9 2033{
5ab66908 2034 struct lttng_ht *ht = metadata_ht;
e316aad5 2035 int ret = 0;
76082088 2036 struct lttng_ht_iter iter;
d88aee68 2037 struct lttng_ht_node_u64 *node;
fb3a43a9 2038
e316aad5
DG
2039 assert(stream);
2040 assert(ht);
2041
d88aee68 2042 DBG3("Adding metadata stream %" PRIu64 " to hash table", stream->key);
e316aad5
DG
2043
2044 pthread_mutex_lock(&consumer_data.lock);
a9838785 2045 pthread_mutex_lock(&stream->chan->lock);
ec6ea7d0 2046 pthread_mutex_lock(&stream->chan->timer_lock);
2e818a6a 2047 pthread_mutex_lock(&stream->lock);
e316aad5 2048
e316aad5
DG
2049 /*
2050 * From here, refcounts are updated so be _careful_ when returning an error
2051 * after this point.
2052 */
2053
fb3a43a9 2054 rcu_read_lock();
76082088
DG
2055
2056 /*
2057 * Lookup the stream just to make sure it does not exist in our internal
2058 * state. This should NEVER happen.
2059 */
d88aee68
DG
2060 lttng_ht_lookup(ht, &stream->key, &iter);
2061 node = lttng_ht_iter_get_node_u64(&iter);
76082088
DG
2062 assert(!node);
2063
e316aad5 2064 /*
ffe60014
DG
2065 * When nb_init_stream_left reaches 0, we don't need to trigger any action
2066 * in terms of destroying the associated channel, because the action that
e316aad5
DG
2067 * causes the count to become 0 also causes a stream to be added. The
2068 * channel deletion will thus be triggered by the following removal of this
2069 * stream.
2070 */
ffe60014 2071 if (uatomic_read(&stream->chan->nb_init_stream_left) > 0) {
f2ad556d
MD
2072 /* Increment refcount before decrementing nb_init_stream_left */
2073 cmm_smp_wmb();
ffe60014 2074 uatomic_dec(&stream->chan->nb_init_stream_left);
e316aad5
DG
2075 }
2076
d88aee68 2077 lttng_ht_add_unique_u64(ht, &stream->node);
ca22feea 2078
d8ef542d
MD
2079 lttng_ht_add_unique_u64(consumer_data.stream_per_chan_id_ht,
2080 &stream->node_channel_id);
2081
ca22feea
DG
2082 /*
2083 * Add stream to the stream_list_ht of the consumer data. No need to steal
2084 * the key since the HT does not use it and we allow to add redundant keys
2085 * into this table.
2086 */
d88aee68 2087 lttng_ht_add_u64(consumer_data.stream_list_ht, &stream->node_session_id);
ca22feea 2088
fb3a43a9 2089 rcu_read_unlock();
e316aad5 2090
2e818a6a 2091 pthread_mutex_unlock(&stream->lock);
a9838785 2092 pthread_mutex_unlock(&stream->chan->lock);
ec6ea7d0 2093 pthread_mutex_unlock(&stream->chan->timer_lock);
e316aad5
DG
2094 pthread_mutex_unlock(&consumer_data.lock);
2095 return ret;
fb3a43a9
DG
2096}
2097
8994307f
DG
2098/*
2099 * Delete data stream that are flagged for deletion (endpoint_status).
2100 */
2101static void validate_endpoint_status_data_stream(void)
2102{
2103 struct lttng_ht_iter iter;
2104 struct lttng_consumer_stream *stream;
2105
2106 DBG("Consumer delete flagged data stream");
2107
2108 rcu_read_lock();
2109 cds_lfht_for_each_entry(data_ht->ht, &iter.iter, stream, node.node) {
2110 /* Validate delete flag of the stream */
79d4ffb7 2111 if (stream->endpoint_status == CONSUMER_ENDPOINT_ACTIVE) {
8994307f
DG
2112 continue;
2113 }
2114 /* Delete it right now */
2115 consumer_del_stream(stream, data_ht);
2116 }
2117 rcu_read_unlock();
2118}
2119
2120/*
2121 * Delete metadata stream that are flagged for deletion (endpoint_status).
2122 */
2123static void validate_endpoint_status_metadata_stream(
2124 struct lttng_poll_event *pollset)
2125{
2126 struct lttng_ht_iter iter;
2127 struct lttng_consumer_stream *stream;
2128
2129 DBG("Consumer delete flagged metadata stream");
2130
2131 assert(pollset);
2132
2133 rcu_read_lock();
2134 cds_lfht_for_each_entry(metadata_ht->ht, &iter.iter, stream, node.node) {
2135 /* Validate delete flag of the stream */
79d4ffb7 2136 if (stream->endpoint_status == CONSUMER_ENDPOINT_ACTIVE) {
8994307f
DG
2137 continue;
2138 }
2139 /*
2140 * Remove from pollset so the metadata thread can continue without
2141 * blocking on a deleted stream.
2142 */
2143 lttng_poll_del(pollset, stream->wait_fd);
2144
2145 /* Delete it right now */
2146 consumer_del_metadata_stream(stream, metadata_ht);
2147 }
2148 rcu_read_unlock();
2149}
2150
fb3a43a9
DG
2151/*
2152 * Thread polls on metadata file descriptor and write them on disk or on the
2153 * network.
2154 */
7d980def 2155void *consumer_thread_metadata_poll(void *data)
fb3a43a9
DG
2156{
2157 int ret, i, pollfd;
2158 uint32_t revents, nb_fd;
e316aad5 2159 struct lttng_consumer_stream *stream = NULL;
fb3a43a9 2160 struct lttng_ht_iter iter;
d88aee68 2161 struct lttng_ht_node_u64 *node;
fb3a43a9
DG
2162 struct lttng_poll_event events;
2163 struct lttng_consumer_local_data *ctx = data;
2164 ssize_t len;
2165
2166 rcu_register_thread();
2167
2168 DBG("Thread metadata poll started");
2169
fb3a43a9
DG
2170 /* Size is set to 1 for the consumer_metadata pipe */
2171 ret = lttng_poll_create(&events, 2, LTTNG_CLOEXEC);
2172 if (ret < 0) {
2173 ERR("Poll set creation failed");
d8ef542d 2174 goto end_poll;
fb3a43a9
DG
2175 }
2176
13886d2d
DG
2177 ret = lttng_poll_add(&events,
2178 lttng_pipe_get_readfd(ctx->consumer_metadata_pipe), LPOLLIN);
fb3a43a9
DG
2179 if (ret < 0) {
2180 goto end;
2181 }
2182
2183 /* Main loop */
2184 DBG("Metadata main loop started");
2185
2186 while (1) {
fb3a43a9 2187 /* Only the metadata pipe is set */
d21b0d71 2188 if (LTTNG_POLL_GETNB(&events) == 0 && consumer_quit == 1) {
fb3a43a9
DG
2189 goto end;
2190 }
2191
2192restart:
d21b0d71 2193 DBG("Metadata poll wait with %d fd(s)", LTTNG_POLL_GETNB(&events));
fb3a43a9
DG
2194 ret = lttng_poll_wait(&events, -1);
2195 DBG("Metadata event catched in thread");
2196 if (ret < 0) {
2197 if (errno == EINTR) {
e316aad5 2198 ERR("Poll EINTR catched");
fb3a43a9
DG
2199 goto restart;
2200 }
2201 goto error;
2202 }
2203
0d9c5d77
DG
2204 nb_fd = ret;
2205
e316aad5 2206 /* From here, the event is a metadata wait fd */
fb3a43a9
DG
2207 for (i = 0; i < nb_fd; i++) {
2208 revents = LTTNG_POLL_GETEV(&events, i);
2209 pollfd = LTTNG_POLL_GETFD(&events, i);
2210
13886d2d 2211 if (pollfd == lttng_pipe_get_readfd(ctx->consumer_metadata_pipe)) {
4adabd61 2212 if (revents & (LPOLLERR | LPOLLHUP )) {
fb3a43a9
DG
2213 DBG("Metadata thread pipe hung up");
2214 /*
2215 * Remove the pipe from the poll set and continue the loop
2216 * since their might be data to consume.
2217 */
13886d2d
DG
2218 lttng_poll_del(&events,
2219 lttng_pipe_get_readfd(ctx->consumer_metadata_pipe));
2220 lttng_pipe_read_close(ctx->consumer_metadata_pipe);
fb3a43a9
DG
2221 continue;
2222 } else if (revents & LPOLLIN) {
13886d2d
DG
2223 ssize_t pipe_len;
2224
2225 pipe_len = lttng_pipe_read(ctx->consumer_metadata_pipe,
2226 &stream, sizeof(stream));
2227 if (pipe_len < 0) {
6a00837f 2228 ERR("read metadata stream, ret: %zd", pipe_len);
fb3a43a9 2229 /*
13886d2d 2230 * Continue here to handle the rest of the streams.
fb3a43a9
DG
2231 */
2232 continue;
2233 }
2234
8994307f
DG
2235 /* A NULL stream means that the state has changed. */
2236 if (stream == NULL) {
2237 /* Check for deleted streams. */
2238 validate_endpoint_status_metadata_stream(&events);
3714380f 2239 goto restart;
8994307f
DG
2240 }
2241
fb3a43a9
DG
2242 DBG("Adding metadata stream %d to poll set",
2243 stream->wait_fd);
2244
fb3a43a9
DG
2245 /* Add metadata stream to the global poll events list */
2246 lttng_poll_add(&events, stream->wait_fd,
2247 LPOLLIN | LPOLLPRI);
fb3a43a9
DG
2248 }
2249
e316aad5 2250 /* Handle other stream */
fb3a43a9
DG
2251 continue;
2252 }
2253
d09e1200 2254 rcu_read_lock();
d88aee68
DG
2255 {
2256 uint64_t tmp_id = (uint64_t) pollfd;
2257
2258 lttng_ht_lookup(metadata_ht, &tmp_id, &iter);
2259 }
2260 node = lttng_ht_iter_get_node_u64(&iter);
e316aad5 2261 assert(node);
fb3a43a9
DG
2262
2263 stream = caa_container_of(node, struct lttng_consumer_stream,
58b1f425 2264 node);
fb3a43a9 2265
e316aad5 2266 /* Check for error event */
4adabd61 2267 if (revents & (LPOLLERR | LPOLLHUP)) {
e316aad5 2268 DBG("Metadata fd %d is hup|err.", pollfd);
fb3a43a9
DG
2269 if (!stream->hangup_flush_done
2270 && (consumer_data.type == LTTNG_CONSUMER32_UST
2271 || consumer_data.type == LTTNG_CONSUMER64_UST)) {
2272 DBG("Attempting to flush and consume the UST buffers");
2273 lttng_ustconsumer_on_stream_hangup(stream);
2274
2275 /* We just flushed the stream now read it. */
4bb94b75
DG
2276 do {
2277 len = ctx->on_buffer_ready(stream, ctx);
2278 /*
2279 * We don't check the return value here since if we get
2280 * a negative len, it means an error occured thus we
2281 * simply remove it from the poll set and free the
2282 * stream.
2283 */
2284 } while (len > 0);
fb3a43a9
DG
2285 }
2286
fb3a43a9 2287 lttng_poll_del(&events, stream->wait_fd);
e316aad5
DG
2288 /*
2289 * This call update the channel states, closes file descriptors
2290 * and securely free the stream.
2291 */
2292 consumer_del_metadata_stream(stream, metadata_ht);
2293 } else if (revents & (LPOLLIN | LPOLLPRI)) {
2294 /* Get the data out of the metadata file descriptor */
2295 DBG("Metadata available on fd %d", pollfd);
2296 assert(stream->wait_fd == pollfd);
2297
04ef1097
MD
2298 do {
2299 len = ctx->on_buffer_ready(stream, ctx);
2300 /*
2301 * We don't check the return value here since if we get
2302 * a negative len, it means an error occured thus we
2303 * simply remove it from the poll set and free the
2304 * stream.
2305 */
2306 } while (len > 0);
2307
e316aad5 2308 /* It's ok to have an unavailable sub-buffer */
b64403e3 2309 if (len < 0 && len != -EAGAIN && len != -ENODATA) {
ab1027f4
DG
2310 /* Clean up stream from consumer and free it. */
2311 lttng_poll_del(&events, stream->wait_fd);
2312 consumer_del_metadata_stream(stream, metadata_ht);
e316aad5 2313 }
fb3a43a9 2314 }
e316aad5
DG
2315
2316 /* Release RCU lock for the stream looked up */
d09e1200 2317 rcu_read_unlock();
fb3a43a9
DG
2318 }
2319 }
2320
2321error:
2322end:
2323 DBG("Metadata poll thread exiting");
fb3a43a9 2324
d8ef542d
MD
2325 lttng_poll_clean(&events);
2326end_poll:
fb3a43a9
DG
2327 rcu_unregister_thread();
2328 return NULL;
2329}
2330
3bd1e081 2331/*
e4421fec 2332 * This thread polls the fds in the set to consume the data and write
3bd1e081
MD
2333 * it to tracefile if necessary.
2334 */
7d980def 2335void *consumer_thread_data_poll(void *data)
3bd1e081
MD
2336{
2337 int num_rdy, num_hup, high_prio, ret, i;
2338 struct pollfd *pollfd = NULL;
2339 /* local view of the streams */
c869f647 2340 struct lttng_consumer_stream **local_stream = NULL, *new_stream = NULL;
3bd1e081
MD
2341 /* local view of consumer_data.fds_count */
2342 int nb_fd = 0;
3bd1e081 2343 struct lttng_consumer_local_data *ctx = data;
00e2e675 2344 ssize_t len;
3bd1e081 2345
e7b994a3
DG
2346 rcu_register_thread();
2347
4df6c8cb
MD
2348 local_stream = zmalloc(sizeof(struct lttng_consumer_stream *));
2349 if (local_stream == NULL) {
2350 PERROR("local_stream malloc");
2351 goto end;
2352 }
3bd1e081
MD
2353
2354 while (1) {
2355 high_prio = 0;
2356 num_hup = 0;
2357
2358 /*
e4421fec 2359 * the fds set has been updated, we need to update our
3bd1e081
MD
2360 * local array as well
2361 */
2362 pthread_mutex_lock(&consumer_data.lock);
2363 if (consumer_data.need_update) {
0e428499
DG
2364 free(pollfd);
2365 pollfd = NULL;
2366
2367 free(local_stream);
2368 local_stream = NULL;
3bd1e081 2369
50f8ae69 2370 /* allocate for all fds + 1 for the consumer_data_pipe */
effcf122 2371 pollfd = zmalloc((consumer_data.stream_count + 1) * sizeof(struct pollfd));
3bd1e081 2372 if (pollfd == NULL) {
7a57cf92 2373 PERROR("pollfd malloc");
3bd1e081
MD
2374 pthread_mutex_unlock(&consumer_data.lock);
2375 goto end;
2376 }
2377
50f8ae69 2378 /* allocate for all fds + 1 for the consumer_data_pipe */
effcf122 2379 local_stream = zmalloc((consumer_data.stream_count + 1) *
747f8642 2380 sizeof(struct lttng_consumer_stream *));
3bd1e081 2381 if (local_stream == NULL) {
7a57cf92 2382 PERROR("local_stream malloc");
3bd1e081
MD
2383 pthread_mutex_unlock(&consumer_data.lock);
2384 goto end;
2385 }
ffe60014 2386 ret = update_poll_array(ctx, &pollfd, local_stream,
43c34bc3 2387 data_ht);
3bd1e081
MD
2388 if (ret < 0) {
2389 ERR("Error in allocating pollfd or local_outfds");
f73fabfd 2390 lttng_consumer_send_error(ctx, LTTCOMM_CONSUMERD_POLL_ERROR);
3bd1e081
MD
2391 pthread_mutex_unlock(&consumer_data.lock);
2392 goto end;
2393 }
2394 nb_fd = ret;
2395 consumer_data.need_update = 0;
2396 }
2397 pthread_mutex_unlock(&consumer_data.lock);
2398
4078b776
MD
2399 /* No FDs and consumer_quit, consumer_cleanup the thread */
2400 if (nb_fd == 0 && consumer_quit == 1) {
2401 goto end;
2402 }
3bd1e081 2403 /* poll on the array of fds */
88f2b785 2404 restart:
3bd1e081 2405 DBG("polling on %d fd", nb_fd + 1);
cb365c03 2406 num_rdy = poll(pollfd, nb_fd + 1, -1);
3bd1e081
MD
2407 DBG("poll num_rdy : %d", num_rdy);
2408 if (num_rdy == -1) {
88f2b785
MD
2409 /*
2410 * Restart interrupted system call.
2411 */
2412 if (errno == EINTR) {
2413 goto restart;
2414 }
7a57cf92 2415 PERROR("Poll error");
f73fabfd 2416 lttng_consumer_send_error(ctx, LTTCOMM_CONSUMERD_POLL_ERROR);
3bd1e081
MD
2417 goto end;
2418 } else if (num_rdy == 0) {
2419 DBG("Polling thread timed out");
2420 goto end;
2421 }
2422
3bd1e081 2423 /*
50f8ae69 2424 * If the consumer_data_pipe triggered poll go directly to the
00e2e675
DG
2425 * beginning of the loop to update the array. We want to prioritize
2426 * array update over low-priority reads.
3bd1e081 2427 */
509bb1cf 2428 if (pollfd[nb_fd].revents & (POLLIN | POLLPRI)) {
ab30f567 2429 ssize_t pipe_readlen;
04fdd819 2430
50f8ae69 2431 DBG("consumer_data_pipe wake up");
acdb9057
DG
2432 pipe_readlen = lttng_pipe_read(ctx->consumer_data_pipe,
2433 &new_stream, sizeof(new_stream));
23f5f35d 2434 if (pipe_readlen < 0) {
6a00837f 2435 ERR("Consumer data pipe ret %zd", pipe_readlen);
23f5f35d
DG
2436 /* Continue so we can at least handle the current stream(s). */
2437 continue;
2438 }
c869f647
DG
2439
2440 /*
2441 * If the stream is NULL, just ignore it. It's also possible that
2442 * the sessiond poll thread changed the consumer_quit state and is
2443 * waking us up to test it.
2444 */
2445 if (new_stream == NULL) {
8994307f 2446 validate_endpoint_status_data_stream();
c869f647
DG
2447 continue;
2448 }
2449
c869f647 2450 /* Continue to update the local streams and handle prio ones */
3bd1e081
MD
2451 continue;
2452 }
2453
2454 /* Take care of high priority channels first. */
2455 for (i = 0; i < nb_fd; i++) {
9617607b
DG
2456 if (local_stream[i] == NULL) {
2457 continue;
2458 }
fb3a43a9 2459 if (pollfd[i].revents & POLLPRI) {
d41f73b7
MD
2460 DBG("Urgent read on fd %d", pollfd[i].fd);
2461 high_prio = 1;
4078b776 2462 len = ctx->on_buffer_ready(local_stream[i], ctx);
d41f73b7 2463 /* it's ok to have an unavailable sub-buffer */
b64403e3 2464 if (len < 0 && len != -EAGAIN && len != -ENODATA) {
ab1027f4
DG
2465 /* Clean the stream and free it. */
2466 consumer_del_stream(local_stream[i], data_ht);
9617607b 2467 local_stream[i] = NULL;
4078b776
MD
2468 } else if (len > 0) {
2469 local_stream[i]->data_read = 1;
d41f73b7 2470 }
3bd1e081
MD
2471 }
2472 }
2473
4078b776
MD
2474 /*
2475 * If we read high prio channel in this loop, try again
2476 * for more high prio data.
2477 */
2478 if (high_prio) {
3bd1e081
MD
2479 continue;
2480 }
2481
2482 /* Take care of low priority channels. */
4078b776 2483 for (i = 0; i < nb_fd; i++) {
9617607b
DG
2484 if (local_stream[i] == NULL) {
2485 continue;
2486 }
4078b776
MD
2487 if ((pollfd[i].revents & POLLIN) ||
2488 local_stream[i]->hangup_flush_done) {
4078b776
MD
2489 DBG("Normal read on fd %d", pollfd[i].fd);
2490 len = ctx->on_buffer_ready(local_stream[i], ctx);
2491 /* it's ok to have an unavailable sub-buffer */
b64403e3 2492 if (len < 0 && len != -EAGAIN && len != -ENODATA) {
ab1027f4
DG
2493 /* Clean the stream and free it. */
2494 consumer_del_stream(local_stream[i], data_ht);
9617607b 2495 local_stream[i] = NULL;
4078b776
MD
2496 } else if (len > 0) {
2497 local_stream[i]->data_read = 1;
2498 }
2499 }
2500 }
2501
2502 /* Handle hangup and errors */
2503 for (i = 0; i < nb_fd; i++) {
9617607b
DG
2504 if (local_stream[i] == NULL) {
2505 continue;
2506 }
4078b776
MD
2507 if (!local_stream[i]->hangup_flush_done
2508 && (pollfd[i].revents & (POLLHUP | POLLERR | POLLNVAL))
2509 && (consumer_data.type == LTTNG_CONSUMER32_UST
2510 || consumer_data.type == LTTNG_CONSUMER64_UST)) {
2511 DBG("fd %d is hup|err|nval. Attempting flush and read.",
9617607b 2512 pollfd[i].fd);
4078b776
MD
2513 lttng_ustconsumer_on_stream_hangup(local_stream[i]);
2514 /* Attempt read again, for the data we just flushed. */
2515 local_stream[i]->data_read = 1;
2516 }
2517 /*
2518 * If the poll flag is HUP/ERR/NVAL and we have
2519 * read no data in this pass, we can remove the
2520 * stream from its hash table.
2521 */
2522 if ((pollfd[i].revents & POLLHUP)) {
2523 DBG("Polling fd %d tells it has hung up.", pollfd[i].fd);
2524 if (!local_stream[i]->data_read) {
43c34bc3 2525 consumer_del_stream(local_stream[i], data_ht);
9617607b 2526 local_stream[i] = NULL;
4078b776
MD
2527 num_hup++;
2528 }
2529 } else if (pollfd[i].revents & POLLERR) {
2530 ERR("Error returned in polling fd %d.", pollfd[i].fd);
2531 if (!local_stream[i]->data_read) {
43c34bc3 2532 consumer_del_stream(local_stream[i], data_ht);
9617607b 2533 local_stream[i] = NULL;
4078b776
MD
2534 num_hup++;
2535 }
2536 } else if (pollfd[i].revents & POLLNVAL) {
2537 ERR("Polling fd %d tells fd is not open.", pollfd[i].fd);
2538 if (!local_stream[i]->data_read) {
43c34bc3 2539 consumer_del_stream(local_stream[i], data_ht);
9617607b 2540 local_stream[i] = NULL;
4078b776 2541 num_hup++;
3bd1e081
MD
2542 }
2543 }
9617607b
DG
2544 if (local_stream[i] != NULL) {
2545 local_stream[i]->data_read = 0;
2546 }
3bd1e081
MD
2547 }
2548 }
2549end:
2550 DBG("polling thread exiting");
0e428499
DG
2551 free(pollfd);
2552 free(local_stream);
fb3a43a9
DG
2553
2554 /*
2555 * Close the write side of the pipe so epoll_wait() in
7d980def
DG
2556 * consumer_thread_metadata_poll can catch it. The thread is monitoring the
2557 * read side of the pipe. If we close them both, epoll_wait strangely does
2558 * not return and could create a endless wait period if the pipe is the
2559 * only tracked fd in the poll set. The thread will take care of closing
2560 * the read side.
fb3a43a9 2561 */
13886d2d 2562 (void) lttng_pipe_write_close(ctx->consumer_metadata_pipe);
fb3a43a9 2563
e7b994a3 2564 rcu_unregister_thread();
3bd1e081
MD
2565 return NULL;
2566}
2567
d8ef542d
MD
2568/*
2569 * Close wake-up end of each stream belonging to the channel. This will
2570 * allow the poll() on the stream read-side to detect when the
2571 * write-side (application) finally closes them.
2572 */
2573static
2574void consumer_close_channel_streams(struct lttng_consumer_channel *channel)
2575{
2576 struct lttng_ht *ht;
2577 struct lttng_consumer_stream *stream;
2578 struct lttng_ht_iter iter;
2579
2580 ht = consumer_data.stream_per_chan_id_ht;
2581
2582 rcu_read_lock();
2583 cds_lfht_for_each_entry_duplicate(ht->ht,
2584 ht->hash_fct(&channel->key, lttng_ht_seed),
2585 ht->match_fct, &channel->key,
2586 &iter.iter, stream, node_channel_id.node) {
f2ad556d
MD
2587 /*
2588 * Protect against teardown with mutex.
2589 */
2590 pthread_mutex_lock(&stream->lock);
2591 if (cds_lfht_is_node_deleted(&stream->node.node)) {
2592 goto next;
2593 }
d8ef542d
MD
2594 switch (consumer_data.type) {
2595 case LTTNG_CONSUMER_KERNEL:
2596 break;
2597 case LTTNG_CONSUMER32_UST:
2598 case LTTNG_CONSUMER64_UST:
2599 /*
2600 * Note: a mutex is taken internally within
2601 * liblttng-ust-ctl to protect timer wakeup_fd
2602 * use from concurrent close.
2603 */
2604 lttng_ustconsumer_close_stream_wakeup(stream);
2605 break;
2606 default:
2607 ERR("Unknown consumer_data type");
2608 assert(0);
2609 }
f2ad556d
MD
2610 next:
2611 pthread_mutex_unlock(&stream->lock);
d8ef542d
MD
2612 }
2613 rcu_read_unlock();
2614}
2615
2616static void destroy_channel_ht(struct lttng_ht *ht)
2617{
2618 struct lttng_ht_iter iter;
2619 struct lttng_consumer_channel *channel;
2620 int ret;
2621
2622 if (ht == NULL) {
2623 return;
2624 }
2625
2626 rcu_read_lock();
2627 cds_lfht_for_each_entry(ht->ht, &iter.iter, channel, wait_fd_node.node) {
2628 ret = lttng_ht_del(ht, &iter);
2629 assert(ret != 0);
2630 }
2631 rcu_read_unlock();
2632
2633 lttng_ht_destroy(ht);
2634}
2635
2636/*
2637 * This thread polls the channel fds to detect when they are being
2638 * closed. It closes all related streams if the channel is detected as
2639 * closed. It is currently only used as a shim layer for UST because the
2640 * consumerd needs to keep the per-stream wakeup end of pipes open for
2641 * periodical flush.
2642 */
2643void *consumer_thread_channel_poll(void *data)
2644{
2645 int ret, i, pollfd;
2646 uint32_t revents, nb_fd;
2647 struct lttng_consumer_channel *chan = NULL;
2648 struct lttng_ht_iter iter;
2649 struct lttng_ht_node_u64 *node;
2650 struct lttng_poll_event events;
2651 struct lttng_consumer_local_data *ctx = data;
2652 struct lttng_ht *channel_ht;
2653
2654 rcu_register_thread();
2655
2656 channel_ht = lttng_ht_new(0, LTTNG_HT_TYPE_U64);
2657 if (!channel_ht) {
2658 /* ENOMEM at this point. Better to bail out. */
2659 goto end_ht;
2660 }
2661
2662 DBG("Thread channel poll started");
2663
2664 /* Size is set to 1 for the consumer_channel pipe */
2665 ret = lttng_poll_create(&events, 2, LTTNG_CLOEXEC);
2666 if (ret < 0) {
2667 ERR("Poll set creation failed");
2668 goto end_poll;
2669 }
2670
2671 ret = lttng_poll_add(&events, ctx->consumer_channel_pipe[0], LPOLLIN);
2672 if (ret < 0) {
2673 goto end;
2674 }
2675
2676 /* Main loop */
2677 DBG("Channel main loop started");
2678
2679 while (1) {
2680 /* Only the channel pipe is set */
2681 if (LTTNG_POLL_GETNB(&events) == 0 && consumer_quit == 1) {
2682 goto end;
2683 }
2684
2685restart:
2686 DBG("Channel poll wait with %d fd(s)", LTTNG_POLL_GETNB(&events));
2687 ret = lttng_poll_wait(&events, -1);
2688 DBG("Channel event catched in thread");
2689 if (ret < 0) {
2690 if (errno == EINTR) {
2691 ERR("Poll EINTR catched");
2692 goto restart;
2693 }
2694 goto end;
2695 }
2696
2697 nb_fd = ret;
2698
2699 /* From here, the event is a channel wait fd */
2700 for (i = 0; i < nb_fd; i++) {
2701 revents = LTTNG_POLL_GETEV(&events, i);
2702 pollfd = LTTNG_POLL_GETFD(&events, i);
2703
2704 /* Just don't waste time if no returned events for the fd */
2705 if (!revents) {
2706 continue;
2707 }
2708 if (pollfd == ctx->consumer_channel_pipe[0]) {
2709 if (revents & (LPOLLERR | LPOLLHUP)) {
2710 DBG("Channel thread pipe hung up");
2711 /*
2712 * Remove the pipe from the poll set and continue the loop
2713 * since their might be data to consume.
2714 */
2715 lttng_poll_del(&events, ctx->consumer_channel_pipe[0]);
2716 continue;
2717 } else if (revents & LPOLLIN) {
2718 enum consumer_channel_action action;
a0cbdd2e 2719 uint64_t key;
d8ef542d 2720
a0cbdd2e 2721 ret = read_channel_pipe(ctx, &chan, &key, &action);
d8ef542d
MD
2722 if (ret <= 0) {
2723 ERR("Error reading channel pipe");
2724 continue;
2725 }
2726
2727 switch (action) {
2728 case CONSUMER_CHANNEL_ADD:
2729 DBG("Adding channel %d to poll set",
2730 chan->wait_fd);
2731
2732 lttng_ht_node_init_u64(&chan->wait_fd_node,
2733 chan->wait_fd);
c7260a81 2734 rcu_read_lock();
d8ef542d
MD
2735 lttng_ht_add_unique_u64(channel_ht,
2736 &chan->wait_fd_node);
c7260a81 2737 rcu_read_unlock();
d8ef542d
MD
2738 /* Add channel to the global poll events list */
2739 lttng_poll_add(&events, chan->wait_fd,
2740 LPOLLIN | LPOLLPRI);
2741 break;
a0cbdd2e
MD
2742 case CONSUMER_CHANNEL_DEL:
2743 {
f2a444f1
DG
2744 struct lttng_consumer_stream *stream, *stmp;
2745
c7260a81 2746 rcu_read_lock();
a0cbdd2e
MD
2747 chan = consumer_find_channel(key);
2748 if (!chan) {
c7260a81 2749 rcu_read_unlock();
a0cbdd2e
MD
2750 ERR("UST consumer get channel key %" PRIu64 " not found for del channel", key);
2751 break;
2752 }
2753 lttng_poll_del(&events, chan->wait_fd);
f623cc0b 2754 iter.iter.node = &chan->wait_fd_node.node;
a0cbdd2e
MD
2755 ret = lttng_ht_del(channel_ht, &iter);
2756 assert(ret == 0);
2757 consumer_close_channel_streams(chan);
2758
f2a444f1
DG
2759 switch (consumer_data.type) {
2760 case LTTNG_CONSUMER_KERNEL:
2761 break;
2762 case LTTNG_CONSUMER32_UST:
2763 case LTTNG_CONSUMER64_UST:
2764 /* Delete streams that might have been left in the stream list. */
2765 cds_list_for_each_entry_safe(stream, stmp, &chan->streams.head,
2766 send_node) {
2767 cds_list_del(&stream->send_node);
2768 lttng_ustconsumer_del_stream(stream);
2769 uatomic_sub(&stream->chan->refcount, 1);
2770 assert(&chan->refcount);
2771 free(stream);
2772 }
2773 break;
2774 default:
2775 ERR("Unknown consumer_data type");
2776 assert(0);
2777 }
2778
a0cbdd2e
MD
2779 /*
2780 * Release our own refcount. Force channel deletion even if
2781 * streams were not initialized.
2782 */
2783 if (!uatomic_sub_return(&chan->refcount, 1)) {
2784 consumer_del_channel(chan);
2785 }
c7260a81 2786 rcu_read_unlock();
a0cbdd2e
MD
2787 goto restart;
2788 }
d8ef542d
MD
2789 case CONSUMER_CHANNEL_QUIT:
2790 /*
2791 * Remove the pipe from the poll set and continue the loop
2792 * since their might be data to consume.
2793 */
2794 lttng_poll_del(&events, ctx->consumer_channel_pipe[0]);
2795 continue;
2796 default:
2797 ERR("Unknown action");
2798 break;
2799 }
2800 }
2801
2802 /* Handle other stream */
2803 continue;
2804 }
2805
2806 rcu_read_lock();
2807 {
2808 uint64_t tmp_id = (uint64_t) pollfd;
2809
2810 lttng_ht_lookup(channel_ht, &tmp_id, &iter);
2811 }
2812 node = lttng_ht_iter_get_node_u64(&iter);
2813 assert(node);
2814
2815 chan = caa_container_of(node, struct lttng_consumer_channel,
2816 wait_fd_node);
2817
2818 /* Check for error event */
2819 if (revents & (LPOLLERR | LPOLLHUP)) {
2820 DBG("Channel fd %d is hup|err.", pollfd);
2821
2822 lttng_poll_del(&events, chan->wait_fd);
2823 ret = lttng_ht_del(channel_ht, &iter);
2824 assert(ret == 0);
2825 consumer_close_channel_streams(chan);
f2ad556d
MD
2826
2827 /* Release our own refcount */
2828 if (!uatomic_sub_return(&chan->refcount, 1)
2829 && !uatomic_read(&chan->nb_init_stream_left)) {
2830 consumer_del_channel(chan);
2831 }
d8ef542d
MD
2832 }
2833
2834 /* Release RCU lock for the channel looked up */
2835 rcu_read_unlock();
2836 }
2837 }
2838
2839end:
2840 lttng_poll_clean(&events);
2841end_poll:
2842 destroy_channel_ht(channel_ht);
2843end_ht:
2844 DBG("Channel poll thread exiting");
2845 rcu_unregister_thread();
2846 return NULL;
2847}
2848
331744e3
JD
2849static int set_metadata_socket(struct lttng_consumer_local_data *ctx,
2850 struct pollfd *sockpoll, int client_socket)
2851{
2852 int ret;
2853
2854 assert(ctx);
2855 assert(sockpoll);
2856
2857 if (lttng_consumer_poll_socket(sockpoll) < 0) {
2858 ret = -1;
2859 goto error;
2860 }
2861 DBG("Metadata connection on client_socket");
2862
2863 /* Blocking call, waiting for transmission */
2864 ctx->consumer_metadata_socket = lttcomm_accept_unix_sock(client_socket);
2865 if (ctx->consumer_metadata_socket < 0) {
2866 WARN("On accept metadata");
2867 ret = -1;
2868 goto error;
2869 }
2870 ret = 0;
2871
2872error:
2873 return ret;
2874}
2875
3bd1e081
MD
2876/*
2877 * This thread listens on the consumerd socket and receives the file
2878 * descriptors from the session daemon.
2879 */
7d980def 2880void *consumer_thread_sessiond_poll(void *data)
3bd1e081 2881{
d96f09c6 2882 int sock = -1, client_socket, ret;
3bd1e081
MD
2883 /*
2884 * structure to poll for incoming data on communication socket avoids
2885 * making blocking sockets.
2886 */
2887 struct pollfd consumer_sockpoll[2];
2888 struct lttng_consumer_local_data *ctx = data;
2889
e7b994a3
DG
2890 rcu_register_thread();
2891
3bd1e081
MD
2892 DBG("Creating command socket %s", ctx->consumer_command_sock_path);
2893 unlink(ctx->consumer_command_sock_path);
2894 client_socket = lttcomm_create_unix_sock(ctx->consumer_command_sock_path);
2895 if (client_socket < 0) {
2896 ERR("Cannot create command socket");
2897 goto end;
2898 }
2899
2900 ret = lttcomm_listen_unix_sock(client_socket);
2901 if (ret < 0) {
2902 goto end;
2903 }
2904
32258573 2905 DBG("Sending ready command to lttng-sessiond");
f73fabfd 2906 ret = lttng_consumer_send_error(ctx, LTTCOMM_CONSUMERD_COMMAND_SOCK_READY);
3bd1e081
MD
2907 /* return < 0 on error, but == 0 is not fatal */
2908 if (ret < 0) {
32258573 2909 ERR("Error sending ready command to lttng-sessiond");
3bd1e081
MD
2910 goto end;
2911 }
2912
3bd1e081
MD
2913 /* prepare the FDs to poll : to client socket and the should_quit pipe */
2914 consumer_sockpoll[0].fd = ctx->consumer_should_quit[0];
2915 consumer_sockpoll[0].events = POLLIN | POLLPRI;
2916 consumer_sockpoll[1].fd = client_socket;
2917 consumer_sockpoll[1].events = POLLIN | POLLPRI;
2918
2919 if (lttng_consumer_poll_socket(consumer_sockpoll) < 0) {
2920 goto end;
2921 }
2922 DBG("Connection on client_socket");
2923
2924 /* Blocking call, waiting for transmission */
2925 sock = lttcomm_accept_unix_sock(client_socket);
534d2592 2926 if (sock < 0) {
3bd1e081
MD
2927 WARN("On accept");
2928 goto end;
2929 }
3bd1e081 2930
331744e3
JD
2931 /*
2932 * Setup metadata socket which is the second socket connection on the
2933 * command unix socket.
2934 */
2935 ret = set_metadata_socket(ctx, consumer_sockpoll, client_socket);
2936 if (ret < 0) {
2937 goto end;
2938 }
2939
d96f09c6
DG
2940 /* This socket is not useful anymore. */
2941 ret = close(client_socket);
2942 if (ret < 0) {
2943 PERROR("close client_socket");
2944 }
2945 client_socket = -1;
2946
3bd1e081
MD
2947 /* update the polling structure to poll on the established socket */
2948 consumer_sockpoll[1].fd = sock;
2949 consumer_sockpoll[1].events = POLLIN | POLLPRI;
2950
2951 while (1) {
2952 if (lttng_consumer_poll_socket(consumer_sockpoll) < 0) {
2953 goto end;
2954 }
2955 DBG("Incoming command on sock");
2956 ret = lttng_consumer_recv_cmd(ctx, sock, consumer_sockpoll);
2957 if (ret == -ENOENT) {
2958 DBG("Received STOP command");
2959 goto end;
2960 }
4cbc1a04
DG
2961 if (ret <= 0) {
2962 /*
2963 * This could simply be a session daemon quitting. Don't output
2964 * ERR() here.
2965 */
2966 DBG("Communication interrupted on command socket");
3bd1e081
MD
2967 goto end;
2968 }
2969 if (consumer_quit) {
2970 DBG("consumer_thread_receive_fds received quit from signal");
2971 goto end;
2972 }
ffe60014 2973 DBG("received command on sock");
3bd1e081
MD
2974 }
2975end:
ffe60014 2976 DBG("Consumer thread sessiond poll exiting");
3bd1e081 2977
d88aee68
DG
2978 /*
2979 * Close metadata streams since the producer is the session daemon which
2980 * just died.
2981 *
2982 * NOTE: for now, this only applies to the UST tracer.
2983 */
2984 lttng_consumer_close_metadata();
2985
3bd1e081
MD
2986 /*
2987 * when all fds have hung up, the polling thread
2988 * can exit cleanly
2989 */
2990 consumer_quit = 1;
2991
04fdd819 2992 /*
c869f647 2993 * Notify the data poll thread to poll back again and test the
8994307f 2994 * consumer_quit state that we just set so to quit gracefully.
04fdd819 2995 */
acdb9057 2996 notify_thread_lttng_pipe(ctx->consumer_data_pipe);
c869f647 2997
a0cbdd2e 2998 notify_channel_pipe(ctx, NULL, -1, CONSUMER_CHANNEL_QUIT);
d8ef542d 2999
d96f09c6
DG
3000 /* Cleaning up possibly open sockets. */
3001 if (sock >= 0) {
3002 ret = close(sock);
3003 if (ret < 0) {
3004 PERROR("close sock sessiond poll");
3005 }
3006 }
3007 if (client_socket >= 0) {
38476d24 3008 ret = close(client_socket);
d96f09c6
DG
3009 if (ret < 0) {
3010 PERROR("close client_socket sessiond poll");
3011 }
3012 }
3013
e7b994a3 3014 rcu_unregister_thread();
3bd1e081
MD
3015 return NULL;
3016}
d41f73b7 3017
4078b776 3018ssize_t lttng_consumer_read_subbuffer(struct lttng_consumer_stream *stream,
d41f73b7
MD
3019 struct lttng_consumer_local_data *ctx)
3020{
74251bb8
DG
3021 ssize_t ret;
3022
3023 pthread_mutex_lock(&stream->lock);
3024
d41f73b7
MD
3025 switch (consumer_data.type) {
3026 case LTTNG_CONSUMER_KERNEL:
74251bb8
DG
3027 ret = lttng_kconsumer_read_subbuffer(stream, ctx);
3028 break;
7753dea8
MD
3029 case LTTNG_CONSUMER32_UST:
3030 case LTTNG_CONSUMER64_UST:
74251bb8
DG
3031 ret = lttng_ustconsumer_read_subbuffer(stream, ctx);
3032 break;
d41f73b7
MD
3033 default:
3034 ERR("Unknown consumer_data type");
3035 assert(0);
74251bb8
DG
3036 ret = -ENOSYS;
3037 break;
d41f73b7 3038 }
74251bb8
DG
3039
3040 pthread_mutex_unlock(&stream->lock);
3041 return ret;
d41f73b7
MD
3042}
3043
3044int lttng_consumer_on_recv_stream(struct lttng_consumer_stream *stream)
3045{
3046 switch (consumer_data.type) {
3047 case LTTNG_CONSUMER_KERNEL:
3048 return lttng_kconsumer_on_recv_stream(stream);
7753dea8
MD
3049 case LTTNG_CONSUMER32_UST:
3050 case LTTNG_CONSUMER64_UST:
d41f73b7
MD
3051 return lttng_ustconsumer_on_recv_stream(stream);
3052 default:
3053 ERR("Unknown consumer_data type");
3054 assert(0);
3055 return -ENOSYS;
3056 }
3057}
e4421fec
DG
3058
3059/*
3060 * Allocate and set consumer data hash tables.
3061 */
ab62752a 3062int lttng_consumer_init(void)
e4421fec 3063{
d88aee68 3064 consumer_data.channel_ht = lttng_ht_new(0, LTTNG_HT_TYPE_U64);
ab62752a
MD
3065 if (!consumer_data.channel_ht) {
3066 goto error;
3067 }
3068
d88aee68 3069 consumer_data.relayd_ht = lttng_ht_new(0, LTTNG_HT_TYPE_U64);
ab62752a
MD
3070 if (!consumer_data.relayd_ht) {
3071 goto error;
3072 }
3073
d88aee68 3074 consumer_data.stream_list_ht = lttng_ht_new(0, LTTNG_HT_TYPE_U64);
ab62752a
MD
3075 if (!consumer_data.stream_list_ht) {
3076 goto error;
3077 }
3078
d8ef542d 3079 consumer_data.stream_per_chan_id_ht = lttng_ht_new(0, LTTNG_HT_TYPE_U64);
ab62752a
MD
3080 if (!consumer_data.stream_per_chan_id_ht) {
3081 goto error;
3082 }
3083
3084 data_ht = lttng_ht_new(0, LTTNG_HT_TYPE_U64);
3085 if (!data_ht) {
3086 goto error;
3087 }
3088
3089 metadata_ht = lttng_ht_new(0, LTTNG_HT_TYPE_U64);
3090 if (!metadata_ht) {
3091 goto error;
3092 }
3093
3094 return 0;
3095
3096error:
3097 return -1;
e4421fec 3098}
7735ef9e
DG
3099
3100/*
3101 * Process the ADD_RELAYD command receive by a consumer.
3102 *
3103 * This will create a relayd socket pair and add it to the relayd hash table.
3104 * The caller MUST acquire a RCU read side lock before calling it.
3105 */
da009f2c 3106int consumer_add_relayd_socket(uint64_t net_seq_idx, int sock_type,
7735ef9e 3107 struct lttng_consumer_local_data *ctx, int sock,
6151a90f 3108 struct pollfd *consumer_sockpoll,
30319bcb 3109 struct lttcomm_relayd_sock *relayd_sock, uint64_t sessiond_id)
7735ef9e 3110{
cd2b09ed 3111 int fd = -1, ret = -1, relayd_created = 0;
3f84e025 3112 enum lttcomm_return_code ret_code = LTTCOMM_CONSUMERD_SUCCESS;
d4298c99 3113 struct consumer_relayd_sock_pair *relayd = NULL;
7735ef9e 3114
6151a90f
JD
3115 assert(ctx);
3116 assert(relayd_sock);
3117
da009f2c 3118 DBG("Consumer adding relayd socket (idx: %" PRIu64 ")", net_seq_idx);
7735ef9e
DG
3119
3120 /* Get relayd reference if exists. */
3121 relayd = consumer_find_relayd(net_seq_idx);
3122 if (relayd == NULL) {
da009f2c 3123 assert(sock_type == LTTNG_STREAM_CONTROL);
7735ef9e
DG
3124 /* Not found. Allocate one. */
3125 relayd = consumer_allocate_relayd_sock_pair(net_seq_idx);
3126 if (relayd == NULL) {
0d08d75e 3127 ret = -ENOMEM;
618a6a28
MD
3128 ret_code = LTTCOMM_CONSUMERD_ENOMEM;
3129 goto error;
0d08d75e 3130 } else {
30319bcb 3131 relayd->sessiond_session_id = sessiond_id;
0d08d75e 3132 relayd_created = 1;
7735ef9e 3133 }
0d08d75e
DG
3134
3135 /*
3136 * This code path MUST continue to the consumer send status message to
3137 * we can notify the session daemon and continue our work without
3138 * killing everything.
3139 */
da009f2c
MD
3140 } else {
3141 /*
3142 * relayd key should never be found for control socket.
3143 */
3144 assert(sock_type != LTTNG_STREAM_CONTROL);
0d08d75e
DG
3145 }
3146
3147 /* First send a status message before receiving the fds. */
3f84e025 3148 ret = consumer_send_status_msg(sock, LTTCOMM_CONSUMERD_SUCCESS);
618a6a28 3149 if (ret < 0) {
0d08d75e 3150 /* Somehow, the session daemon is not responding anymore. */
618a6a28
MD
3151 lttng_consumer_send_error(ctx, LTTCOMM_CONSUMERD_FATAL);
3152 goto error_nosignal;
7735ef9e
DG
3153 }
3154
3155 /* Poll on consumer socket. */
3156 if (lttng_consumer_poll_socket(consumer_sockpoll) < 0) {
0d08d75e 3157 lttng_consumer_send_error(ctx, LTTCOMM_CONSUMERD_POLL_ERROR);
7735ef9e 3158 ret = -EINTR;
618a6a28 3159 goto error_nosignal;
7735ef9e
DG
3160 }
3161
3162 /* Get relayd socket from session daemon */
3163 ret = lttcomm_recv_fds_unix_sock(sock, &fd, 1);
3164 if (ret != sizeof(fd)) {
7735ef9e 3165 ret = -1;
4028eeb9 3166 fd = -1; /* Just in case it gets set with an invalid value. */
0d08d75e
DG
3167
3168 /*
3169 * Failing to receive FDs might indicate a major problem such as
3170 * reaching a fd limit during the receive where the kernel returns a
3171 * MSG_CTRUNC and fails to cleanup the fd in the queue. Any case, we
3172 * don't take any chances and stop everything.
3173 *
3174 * XXX: Feature request #558 will fix that and avoid this possible
3175 * issue when reaching the fd limit.
3176 */
3177 lttng_consumer_send_error(ctx, LTTCOMM_CONSUMERD_ERROR_RECV_FD);
618a6a28 3178 ret_code = LTTCOMM_CONSUMERD_ERROR_RECV_FD;
f50f23d9
DG
3179 goto error;
3180 }
3181
7735ef9e
DG
3182 /* Copy socket information and received FD */
3183 switch (sock_type) {
3184 case LTTNG_STREAM_CONTROL:
3185 /* Copy received lttcomm socket */
6151a90f
JD
3186 lttcomm_copy_sock(&relayd->control_sock.sock, &relayd_sock->sock);
3187 ret = lttcomm_create_sock(&relayd->control_sock.sock);
4028eeb9 3188 /* Handle create_sock error. */
f66c074c 3189 if (ret < 0) {
618a6a28 3190 ret_code = LTTCOMM_CONSUMERD_ENOMEM;
4028eeb9 3191 goto error;
f66c074c 3192 }
da009f2c
MD
3193 /*
3194 * Close the socket created internally by
3195 * lttcomm_create_sock, so we can replace it by the one
3196 * received from sessiond.
3197 */
3198 if (close(relayd->control_sock.sock.fd)) {
3199 PERROR("close");
3200 }
7735ef9e
DG
3201
3202 /* Assign new file descriptor */
6151a90f 3203 relayd->control_sock.sock.fd = fd;
4b29f1ce 3204 fd = -1; /* For error path */
6151a90f
JD
3205 /* Assign version values. */
3206 relayd->control_sock.major = relayd_sock->major;
3207 relayd->control_sock.minor = relayd_sock->minor;
c5b6f4f0
DG
3208
3209 /*
59e71485
DG
3210 * Create a session on the relayd and store the returned id. Lock the
3211 * control socket mutex if the relayd was NOT created before.
c5b6f4f0 3212 */
59e71485
DG
3213 if (!relayd_created) {
3214 pthread_mutex_lock(&relayd->ctrl_sock_mutex);
3215 }
c5b6f4f0 3216 ret = relayd_create_session(&relayd->control_sock,
f7079f67 3217 &relayd->relayd_session_id);
59e71485
DG
3218 if (!relayd_created) {
3219 pthread_mutex_unlock(&relayd->ctrl_sock_mutex);
3220 }
c5b6f4f0 3221 if (ret < 0) {
ffe60014
DG
3222 /*
3223 * Close all sockets of a relayd object. It will be freed if it was
3224 * created at the error code path or else it will be garbage
3225 * collect.
3226 */
3227 (void) relayd_close(&relayd->control_sock);
3228 (void) relayd_close(&relayd->data_sock);
618a6a28 3229 ret_code = LTTCOMM_CONSUMERD_RELAYD_FAIL;
c5b6f4f0
DG
3230 goto error;
3231 }
3232
7735ef9e
DG
3233 break;
3234 case LTTNG_STREAM_DATA:
3235 /* Copy received lttcomm socket */
6151a90f
JD
3236 lttcomm_copy_sock(&relayd->data_sock.sock, &relayd_sock->sock);
3237 ret = lttcomm_create_sock(&relayd->data_sock.sock);
4028eeb9 3238 /* Handle create_sock error. */
f66c074c 3239 if (ret < 0) {
618a6a28 3240 ret_code = LTTCOMM_CONSUMERD_ENOMEM;
4028eeb9 3241 goto error;
f66c074c 3242 }
da009f2c
MD
3243 /*
3244 * Close the socket created internally by
3245 * lttcomm_create_sock, so we can replace it by the one
3246 * received from sessiond.
3247 */
3248 if (close(relayd->data_sock.sock.fd)) {
3249 PERROR("close");
3250 }
7735ef9e
DG
3251
3252 /* Assign new file descriptor */
6151a90f 3253 relayd->data_sock.sock.fd = fd;
4b29f1ce 3254 fd = -1; /* for eventual error paths */
6151a90f
JD
3255 /* Assign version values. */
3256 relayd->data_sock.major = relayd_sock->major;
3257 relayd->data_sock.minor = relayd_sock->minor;
7735ef9e
DG
3258 break;
3259 default:
3260 ERR("Unknown relayd socket type (%d)", sock_type);
59e71485 3261 ret = -1;
618a6a28 3262 ret_code = LTTCOMM_CONSUMERD_FATAL;
7735ef9e
DG
3263 goto error;
3264 }
3265
d88aee68 3266 DBG("Consumer %s socket created successfully with net idx %" PRIu64 " (fd: %d)",
7735ef9e
DG
3267 sock_type == LTTNG_STREAM_CONTROL ? "control" : "data",
3268 relayd->net_seq_idx, fd);
3269
618a6a28
MD
3270 /* We successfully added the socket. Send status back. */
3271 ret = consumer_send_status_msg(sock, ret_code);
3272 if (ret < 0) {
3273 /* Somehow, the session daemon is not responding anymore. */
3274 lttng_consumer_send_error(ctx, LTTCOMM_CONSUMERD_FATAL);
3275 goto error_nosignal;
3276 }
3277
7735ef9e
DG
3278 /*
3279 * Add relayd socket pair to consumer data hashtable. If object already
3280 * exists or on error, the function gracefully returns.
3281 */
d09e1200 3282 add_relayd(relayd);
7735ef9e
DG
3283
3284 /* All good! */
4028eeb9 3285 return 0;
7735ef9e
DG
3286
3287error:
618a6a28
MD
3288 if (consumer_send_status_msg(sock, ret_code) < 0) {
3289 lttng_consumer_send_error(ctx, LTTCOMM_CONSUMERD_FATAL);
3290 }
3291
3292error_nosignal:
4028eeb9
DG
3293 /* Close received socket if valid. */
3294 if (fd >= 0) {
3295 if (close(fd)) {
3296 PERROR("close received socket");
3297 }
3298 }
cd2b09ed
DG
3299
3300 if (relayd_created) {
cd2b09ed
DG
3301 free(relayd);
3302 }
3303
7735ef9e
DG
3304 return ret;
3305}
ca22feea 3306
4e9a4686
DG
3307/*
3308 * Try to lock the stream mutex.
3309 *
3310 * On success, 1 is returned else 0 indicating that the mutex is NOT lock.
3311 */
3312static int stream_try_lock(struct lttng_consumer_stream *stream)
3313{
3314 int ret;
3315
3316 assert(stream);
3317
3318 /*
3319 * Try to lock the stream mutex. On failure, we know that the stream is
3320 * being used else where hence there is data still being extracted.
3321 */
3322 ret = pthread_mutex_trylock(&stream->lock);
3323 if (ret) {
3324 /* For both EBUSY and EINVAL error, the mutex is NOT locked. */
3325 ret = 0;
3326 goto end;
3327 }
3328
3329 ret = 1;
3330
3331end:
3332 return ret;
3333}
3334
f7079f67
DG
3335/*
3336 * Search for a relayd associated to the session id and return the reference.
3337 *
3338 * A rcu read side lock MUST be acquire before calling this function and locked
3339 * until the relayd object is no longer necessary.
3340 */
3341static struct consumer_relayd_sock_pair *find_relayd_by_session_id(uint64_t id)
3342{
3343 struct lttng_ht_iter iter;
f7079f67 3344 struct consumer_relayd_sock_pair *relayd = NULL;
f7079f67
DG
3345
3346 /* Iterate over all relayd since they are indexed by net_seq_idx. */
3347 cds_lfht_for_each_entry(consumer_data.relayd_ht->ht, &iter.iter, relayd,
3348 node.node) {
18261bd1
DG
3349 /*
3350 * Check by sessiond id which is unique here where the relayd session
3351 * id might not be when having multiple relayd.
3352 */
3353 if (relayd->sessiond_session_id == id) {
f7079f67 3354 /* Found the relayd. There can be only one per id. */
18261bd1 3355 goto found;
f7079f67
DG
3356 }
3357 }
3358
18261bd1
DG
3359 return NULL;
3360
3361found:
f7079f67
DG
3362 return relayd;
3363}
3364
ca22feea
DG
3365/*
3366 * Check if for a given session id there is still data needed to be extract
3367 * from the buffers.
3368 *
6d805429 3369 * Return 1 if data is pending or else 0 meaning ready to be read.
ca22feea 3370 */
6d805429 3371int consumer_data_pending(uint64_t id)
ca22feea
DG
3372{
3373 int ret;
3374 struct lttng_ht_iter iter;
3375 struct lttng_ht *ht;
3376 struct lttng_consumer_stream *stream;
f7079f67 3377 struct consumer_relayd_sock_pair *relayd = NULL;
6d805429 3378 int (*data_pending)(struct lttng_consumer_stream *);
ca22feea 3379
6d805429 3380 DBG("Consumer data pending command on session id %" PRIu64, id);
ca22feea 3381
6f6eda74 3382 rcu_read_lock();
ca22feea
DG
3383 pthread_mutex_lock(&consumer_data.lock);
3384
3385 switch (consumer_data.type) {
3386 case LTTNG_CONSUMER_KERNEL:
6d805429 3387 data_pending = lttng_kconsumer_data_pending;
ca22feea
DG
3388 break;
3389 case LTTNG_CONSUMER32_UST:
3390 case LTTNG_CONSUMER64_UST:
6d805429 3391 data_pending = lttng_ustconsumer_data_pending;
ca22feea
DG
3392 break;
3393 default:
3394 ERR("Unknown consumer data type");
3395 assert(0);
3396 }
3397
3398 /* Ease our life a bit */
3399 ht = consumer_data.stream_list_ht;
3400
f7079f67
DG
3401 relayd = find_relayd_by_session_id(id);
3402 if (relayd) {
3403 /* Send init command for data pending. */
3404 pthread_mutex_lock(&relayd->ctrl_sock_mutex);
3405 ret = relayd_begin_data_pending(&relayd->control_sock,
3406 relayd->relayd_session_id);
3407 pthread_mutex_unlock(&relayd->ctrl_sock_mutex);
3408 if (ret < 0) {
3409 /* Communication error thus the relayd so no data pending. */
3410 goto data_not_pending;
3411 }
3412 }
3413
c8f59ee5 3414 cds_lfht_for_each_entry_duplicate(ht->ht,
d88aee68
DG
3415 ht->hash_fct(&id, lttng_ht_seed),
3416 ht->match_fct, &id,
ca22feea 3417 &iter.iter, stream, node_session_id.node) {
4e9a4686
DG
3418 /* If this call fails, the stream is being used hence data pending. */
3419 ret = stream_try_lock(stream);
3420 if (!ret) {
f7079f67 3421 goto data_pending;
ca22feea 3422 }
ca22feea 3423
4e9a4686
DG
3424 /*
3425 * A removed node from the hash table indicates that the stream has
3426 * been deleted thus having a guarantee that the buffers are closed
3427 * on the consumer side. However, data can still be transmitted
3428 * over the network so don't skip the relayd check.
3429 */
3430 ret = cds_lfht_is_node_deleted(&stream->node.node);
3431 if (!ret) {
e5d1a9b3
MD
3432 /*
3433 * An empty output file is not valid. We need at least one packet
3434 * generated per stream, even if it contains no event, so it
3435 * contains at least one packet header.
3436 */
3437 if (stream->output_written == 0) {
3438 pthread_mutex_unlock(&stream->lock);
3439 goto data_pending;
3440 }
4e9a4686 3441 /* Check the stream if there is data in the buffers. */
6d805429
DG
3442 ret = data_pending(stream);
3443 if (ret == 1) {
4e9a4686 3444 pthread_mutex_unlock(&stream->lock);
f7079f67 3445 goto data_pending;
4e9a4686
DG
3446 }
3447 }
3448
3449 /* Relayd check */
f7079f67 3450 if (relayd) {
c8f59ee5
DG
3451 pthread_mutex_lock(&relayd->ctrl_sock_mutex);
3452 if (stream->metadata_flag) {
ad7051c0
DG
3453 ret = relayd_quiescent_control(&relayd->control_sock,
3454 stream->relayd_stream_id);
c8f59ee5 3455 } else {
6d805429 3456 ret = relayd_data_pending(&relayd->control_sock,
39df6d9f
DG
3457 stream->relayd_stream_id,
3458 stream->next_net_seq_num - 1);
c8f59ee5
DG
3459 }
3460 pthread_mutex_unlock(&relayd->ctrl_sock_mutex);
6d805429 3461 if (ret == 1) {
4e9a4686 3462 pthread_mutex_unlock(&stream->lock);
f7079f67 3463 goto data_pending;
c8f59ee5
DG
3464 }
3465 }
4e9a4686 3466 pthread_mutex_unlock(&stream->lock);
c8f59ee5 3467 }
ca22feea 3468
f7079f67
DG
3469 if (relayd) {
3470 unsigned int is_data_inflight = 0;
3471
3472 /* Send init command for data pending. */
3473 pthread_mutex_lock(&relayd->ctrl_sock_mutex);
3474 ret = relayd_end_data_pending(&relayd->control_sock,
3475 relayd->relayd_session_id, &is_data_inflight);
3476 pthread_mutex_unlock(&relayd->ctrl_sock_mutex);
bdd88757 3477 if (ret < 0) {
f7079f67
DG
3478 goto data_not_pending;
3479 }
bdd88757
DG
3480 if (is_data_inflight) {
3481 goto data_pending;
3482 }
f7079f67
DG
3483 }
3484
ca22feea 3485 /*
f7079f67
DG
3486 * Finding _no_ node in the hash table and no inflight data means that the
3487 * stream(s) have been removed thus data is guaranteed to be available for
3488 * analysis from the trace files.
ca22feea
DG
3489 */
3490
f7079f67 3491data_not_pending:
ca22feea
DG
3492 /* Data is available to be read by a viewer. */
3493 pthread_mutex_unlock(&consumer_data.lock);
c8f59ee5 3494 rcu_read_unlock();
6d805429 3495 return 0;
ca22feea 3496
f7079f67 3497data_pending:
ca22feea
DG
3498 /* Data is still being extracted from buffers. */
3499 pthread_mutex_unlock(&consumer_data.lock);
c8f59ee5 3500 rcu_read_unlock();
6d805429 3501 return 1;
ca22feea 3502}
f50f23d9
DG
3503
3504/*
3505 * Send a ret code status message to the sessiond daemon.
3506 *
3507 * Return the sendmsg() return value.
3508 */
3509int consumer_send_status_msg(int sock, int ret_code)
3510{
3511 struct lttcomm_consumer_status_msg msg;
3512
3513 msg.ret_code = ret_code;
3514
3515 return lttcomm_send_unix_sock(sock, &msg, sizeof(msg));
3516}
ffe60014
DG
3517
3518/*
3519 * Send a channel status message to the sessiond daemon.
3520 *
3521 * Return the sendmsg() return value.
3522 */
3523int consumer_send_status_channel(int sock,
3524 struct lttng_consumer_channel *channel)
3525{
3526 struct lttcomm_consumer_status_channel msg;
3527
3528 assert(sock >= 0);
3529
3530 if (!channel) {
3f84e025 3531 msg.ret_code = LTTCOMM_CONSUMERD_CHANNEL_FAIL;
ffe60014 3532 } else {
3f84e025 3533 msg.ret_code = LTTCOMM_CONSUMERD_SUCCESS;
ffe60014
DG
3534 msg.key = channel->key;
3535 msg.stream_count = channel->streams.count;
3536 }
3537
3538 return lttcomm_send_unix_sock(sock, &msg, sizeof(msg));
3539}
5c786ded
JD
3540
3541/*
3542 * Using a maximum stream size with the produced and consumed position of a
3543 * stream, computes the new consumed position to be as close as possible to the
3544 * maximum possible stream size.
3545 *
3546 * If maximum stream size is lower than the possible buffer size (produced -
3547 * consumed), the consumed_pos given is returned untouched else the new value
3548 * is returned.
3549 */
3550unsigned long consumer_get_consumed_maxsize(unsigned long consumed_pos,
3551 unsigned long produced_pos, uint64_t max_stream_size)
3552{
3553 if (max_stream_size && max_stream_size < (produced_pos - consumed_pos)) {
3554 /* Offset from the produced position to get the latest buffers. */
3555 return produced_pos - max_stream_size;
3556 }
3557
3558 return consumed_pos;
3559}
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